Synthesis, Characterization and Cytotoxic Evaluation of New Pyrrolo[1,2-b]pyridazines Obtained via Mesoionic Oxazolo-Pyridazinones

New pyrrolo[1,2-b]pyridazines were synthesized by 3 + 2 cycloaddition reaction between mesoionic oxazolo-pyridazinones and methyl/ethyl propiolate. The mesoionic compounds were generated in situ by action of acetic anhydride on 3(2H)pyridazinone acids obtained from corresponding esters by alkaline hydrolysis followed by acidification. The structures of the compounds were confirmed by elemental analyses and IR, 1H-NMR, 13C-NMR, and X-ray diffraction data. The regioselectivity of cycloaddition was evidenced by NMR spectroscopy and confirmed by X-ray analysis. The compounds were evaluated for their cytotoxicity on plant cells (Triticum aestivum L.) and crustacean animal cells (Artemia franciscana Kellogg and Daphnia magna Straus). The results indicated that the tested compounds exhibited low toxicity on the plant cell (IC50 values higher than 200 µM), while on Artemia nauplii no lethality was observed. Daphnia magna assay showed that pyrrolo[1,2-b]pyridazines 5a and 5c could exhibit toxic effects, whereas, for the other compounds, toxicity was low to moderate. Also, the cytotoxic effects of the compounds were tested on three human adenocarcinoma-derived adherent cell lines (colon LoVo, ovary SK-OV-3, breast MCF-7). The in vitro compound-mediated cytotoxicity assays, performed by the MTS technique, demonstrated dose- and time-dependent cytotoxic activity for several compounds, the highest anti-tumor activity being observed for 5a, 2c, and 5f, especially against colon cancer cells.


Introduction
Five-and six-membered heterocyclic compounds present a special role in drug discovery design due to their remarkable biological properties [1][2][3]. From the five-membered heterocycles class, pyrroles are one of the most important compounds widespread in nature,
The main methods leading to pyrrolo [1,2-b]pyridazines start from pyridazines or pyrroles. Two of the most productive methods starting from pyridazine, which involved the in situ generation of some N-ylides or mesoionic 1,3-oxazole-5-ones, are presented in Scheme 1.
Taking into account the literature data, herein we report the regioselective synthesis of new pyrrolo [1,2-b]pyridazines by 1,3-dipolar cycloaddition reaction between mesoionic bicyclic oxazolo-pyridazinones and non-symmetrical activated alkyne dipolarophiles. New pyrrolo [1,2-b]pyridazines and their acid precursors were investigated for their cytotoxic activity on plant cells (Triticum aestivum L.), crustacean cells (Artemia franciscana Kellogg and Daphnia magna Straus) and several human adherent cell lines derived from human solid tumors such as LoVo (colon adenocarcinoma), SK-OV-3 (ovary carcinoma), and MCF-7 (breast adenocarcinoma). The antiproliferative activity of the compounds under study was compared with the effects induced by several oncolytic drugs such as cisplatin (CisPt), doxorubicin (DOX), or 5-fluorouracil (5-FU), which were used as positive controls of the assays.

Chemistry
1,3-Oxazol-5-ones or münchnones are a mesoionic compound named after the city where they were discovered by Huisgen [40]. The most significant property of münchnones is the 3 + 2 cycloaddition reaction with dipolarophiles giving various heterocyclic derivatives [30,31,[40][41][42]. An illustrative example is the synthesis on the decagram scale of atorvastatin, one of the top-selling drugs, using as a key step the 1,3-dipolar cycloaddition between münchnones and acetylenic dipolarophiles [43]. Due to the low stability of some münchnones, the 3 + 2 cycloaddition reactions have been achieved by their in situ generation in the presence of the dipolarophile. It is known that in many cases the 1,3-dipolar cycloaddition reactions of münchnones with non-symmetrical acetylenic dipolarophiles are not completely regioselective. It was previously reported that the reaction between bicyclic oxazolo-pyridazinone münchnones and esters of acetylenedicarboxylic acid formed the corresponding pyrrolo [1,2-b]pyridazine derivatives [32,33]. Herein is investigated the regioselectivity and synthesis of the new pyrrolo [1,2-b]pyridazine derivatives by 3 + 2 cycloaddition between bicyclic oxazolo-pyridazinone münchnones and marginal acetylenic dipolarophiles such as methyl or ethyl propiolate. The starting material for in situ generation of bicyclic mesoionic münchnones 3a-c was the 3(2H)pyridazinonebutanoic acid precursors 2a-c that have been obtained by alkaline hydrolysis of corresponding esters 1a-c followed by acidification, with good yields (87% for 2a and 90% for 2b and 2c). The corresponding esters were synthesized from 6-aryl-3(2H)pyridazinone Scheme 1. Two excellent routes for obtaining fused pyrroles including pyrrolo [1,2-b]pyridazines.
The main methods leading to pyrrolo[1,2-b]pyridazines start from pyridazines or pyrroles. Two of the most productive methods starting from pyridazine, which involved the in situ generation of some N-ylides or mesoionic 1,3-oxazole-5-ones, are presented in Scheme 1.
Taking into account the literature data, herein we report the regioselective synthesis of new pyrrolo [1,2-b]pyridazines by 1,3-dipolar cycloaddition reaction between mesoionic bicyclic oxazolo-pyridazinones and non-symmetrical activated alkyne dipolarophiles. New pyrrolo [1,2-b]pyridazines and their acid precursors were investigated for their cytotoxic activity on plant cells (Triticum aestivum L.), crustacean cells (Artemia franciscana Kellogg and Daphnia magna Straus) and several human adherent cell lines derived from human solid tumors such as LoVo (colon adenocarcinoma), SK-OV-3 (ovary carcinoma), and MCF-7 (breast adenocarcinoma). The antiproliferative activity of the compounds under study was compared with the effects induced by several oncolytic drugs such as cisplatin (CisPt), doxorubicin (DOX), or 5-fluorouracil (5-FU), which were used as positive controls of the assays.

Chemistry
1,3-Oxazol-5-ones or münchnones are a mesoionic compound named after the city where they were discovered by Huisgen [40]. The most significant property of münchnones is the 3 + 2 cycloaddition reaction with dipolarophiles giving various heterocyclic derivatives [30,31,[40][41][42]. An illustrative example is the synthesis on the decagram scale of atorvastatin, one of the top-selling drugs, using as a key step the 1,3-dipolar cycloaddition between münchnones and acetylenic dipolarophiles [43]. Due to the low stability of some münchnones, the 3 + 2 cycloaddition reactions have been achieved by their in situ generation in the presence of the dipolarophile. It is known that in many cases the 1,3-dipolar cycloaddition reactions of münchnones with non-symmetrical acetylenic dipolarophiles are not completely regioselective. It was previously reported that the reaction between bicyclic oxazolo-pyridazinone münchnones and esters of acetylenedicarboxylic acid formed the corresponding pyrrolo [1,2-b]pyridazine derivatives [32,33]. Herein is investigated the regioselectivity and synthesis of the new pyrrolo[1,2-b]pyridazine derivatives by 3 + 2 cycloaddition between bicyclic oxazolo-pyridazinone münchnones and marginal acetylenic dipolarophiles such as methyl or ethyl propiolate. The starting material for in situ generation of bicyclic mesoionic münchnones 3a-c was the 3(2H)pyridazinonebutanoic acid precursors 2a-c that have been obtained by alkaline hydrolysis of corresponding esters 1a-c followed by acidification, with good yields (87% for 2a and 90% for 2b and 2c). The corresponding esters were synthesized from 6-aryl-3(2H)pyridazinone and The structures of the esters 1a-c were assigned by IR and NMR spectroscopy. The 1 H-NMR spectra of these intermediates present as the main feature the absence of the NH signal of pyridazine moiety and the magnetic non-equivalence of the methylene protons from the CO2Et group which appear as a multiplet instead of a quartet due to the presence of the chiral carbon center in their molecule. The hydrogen atoms H-4 and H-5 from the pyridazinone core appear as two doublets with a coupling constant of 9.6 Hz, as expected.
In the 13 C-NMR spectra, the two types of carbonyl groups appear at δ between 159.7-160.1 ppm for the pyridazine moiety and 169.5-169.7 ppm for the ester group. The carbon signals of methyl from CO2C2H5 and -CHC2H5 groups appeared at 14 ppm and 10 ppm, respectively. Also, the -CH< chiral carbon signal is highlighted at 62.5 ppm while the methylene carbons from ester and alkyl groups resonated at 61.5 ppm and 23 ppm, respectively. The other carbon signals appeared at the corresponding chemical shifts. The most relevant absorption bands in the IR spectra are those corresponding to the stretching vibrations of the carbonyl group from lactam (νC=O = 1655-1665 cm −1 ) or ester (νC=O = 1734-1738 cm −1 ). The structure of the ester 1c was confirmed by single crystal X-ray analysis, which has shown the compound to have a crystal structure comprising one molecular unit ( Figure  2) and no co-crystallized interstitial molecules in the asymmetric part. The aromatic fragment is slightly non-planar with the dihedral angles between two rings of 18.13(8)°. Further analysis of the crystal packing has revealed the presence of short C-H···O and C-O···Cl contacts, which can be interpreted as intermolecular hydrogen and halogen bonding, respectively. As supramolecular aspects (Figure 3a) these contacts provide the direct interaction of each asymmetric unit with four adjacent molecules in the crystal. As a result, the crystal packing is characterized as a quite dense and complex three-dimensional network, as shown in Figure 3b.
The structures of the esters 1a-c were assigned by IR and NMR spectroscopy. The 1 H-NMR spectra of these intermediates present as the main feature the absence of the NH signal of pyridazine moiety and the magnetic non-equivalence of the methylene protons from the CO 2 Et group which appear as a multiplet instead of a quartet due to the presence of the chiral carbon center in their molecule. The hydrogen atoms H-4 and H-5 from the pyridazinone core appear as two doublets with a coupling constant of 9.6 Hz, as expected. In the 13 C-NMR spectra, the two types of carbonyl groups appear at δ between 159.7-160.1 ppm for the pyridazine moiety and 169.5-169.7 ppm for the ester group. The carbon signals of methyl from CO 2 C 2 H 5 and -CHC 2 H 5 groups appeared at 14 ppm and 10 ppm, respectively. Also, the -CH< chiral carbon signal is highlighted at 62.5 ppm while the methylene carbons from ester and alkyl groups resonated at 61.5 ppm and 23 ppm, respectively. The other carbon signals appeared at the corresponding chemical shifts. The most relevant absorption bands in the IR spectra are those corresponding to the stretching vibrations of the carbonyl group from lactam (ν C=O = 1655-1665 cm −1 ) or ester (ν C=O = 1734-1738 cm −1 ). The structure of the ester 1c was confirmed by single crystal X-ray analysis, which has shown the compound to have a crystal structure comprising one molecular unit ( Figure 2) and no co-crystallized interstitial molecules in the asymmetric part. The aromatic fragment is slightly non-planar with the dihedral angles between two rings of 18.13 (8) • . Further analysis of the crystal packing has revealed the presence of short C-H···O and C-O···Cl contacts, which can be interpreted as intermolecular hydrogen and halogen bonding, respectively. As supramolecular aspects (Figure 3a) these contacts provide the direct interaction of each asymmetric unit with four adjacent molecules in the crystal. As a result, the crystal packing is characterized as a quite dense and complex three-dimensional network, as shown in Figure 3b.
The structures of the acids 2a-c were also confirmed by NMR and IR spectroscopy. The proton and carbon NMR spectra are similar to those of the ester precursors. The disappearance of the protons and carbons signals of ethyl ester group from the NMR spectra of 2a-c is the best proof that the hydrolysis took place. The chemical shifts for the carbonyl groups from the pyridazinone ring are close to those of the esters and appear in the range of 160.9-162.5 ppm, although NMR spectra were recorded in different solvents. The signal of carbonyl groups from acids appeared at δ = 173.5-175.6 ppm, being more deshielded compared to the ester intermediates. In the IR spectra, the representative absorption bands are those of ν C=O (1708 cm −1 ) and ν OH (2455-2524 cm −1 ) from carboxyl group. The structure of the acid 2b was also confirmed by X-ray diffraction ( Figure 4). Two aromatic rings in molecule 2b form a dihedral angle of 17.0(2) • , which resembles the value found for molecule 1c. The structural units are interconnected through O-H···O, N-H···O and C-H···O hydrogen bonding, so that the asymmetric part is surrounded by four neighboring molecules, as shown in Figure 5a. In the crystal the neutral molecules are packed to form discrete two-dimensional supramolecular layers, which are running parallel to 010 plane ( Figure 5b). ment is slightly non-planar with the dihedral angles between two rings of 18.13(8)°. Further analysis of the crystal packing has revealed the presence of short C-H···O and C-O···Cl contacts, which can be interpreted as intermolecular hydrogen and halogen bonding, respectively. As supramolecular aspects ( Figure 3a) these contacts provide the direct interaction of each asymmetric unit with four adjacent molecules in the crystal. As a result, the crystal packing is characterized as a quite dense and complex three-dimensional network, as shown in Figure 3b. The structures of the acids 2a-c were also confirmed by NMR and IR spectrosc The proton and carbon NMR spectra are similar to those of the ester precursors. The appearance of the protons and carbons signals of ethyl ester group from the NMR sp of 2a-c is the best proof that the hydrolysis took place. The chemical shifts for the carb groups from the pyridazinone ring are close to those of the esters and appear in the r of 160.9-162.5 ppm, although NMR spectra were recorded in different solvents. The s of carbonyl groups from acids appeared at δ = 173.5-175.6 ppm, being more deshie compared to the ester intermediates. In the IR spectra, the representative absorption b are those of νC=O (1708 cm −1 ) and νOH (2455-2524 cm −1 ) from carboxyl group. The stru of the acid 2b was also confirmed by X-ray diffraction ( Figure 4). Two aromatic rin molecule 2b form a dihedral angle of 17.0(2)°, which resembles the value found for m cule 1c. The structural units are interconnected through O-H···O, N-H···O and C-H···O drogen bonding, so that the asymmetric part is surrounded by four neighboring m cules, as shown in Figure 5a. In the crystal the neutral molecules are packed to form crete two-dimensional supramolecular layers, which are running parallel to 010 p The new pyrrolo [1,2-b]pyridazine derivatives 5a-f were obtained by 1,3-dipolar cycloaddition reactions between the bicyclic mesoionic 1,3-dipoles 3a-c and methyl or ethyl propiolate as non-symmetrical acetylenic dipolarophiles, with yields between 41-52%. The mesoionic oxazolopyridazinones 3a-c were in situ generated by the action of acetic anhydride on the acids 2a-c. The generation of mesoionic 1,3-dipoles and cycloaddition reaction to form pyrrolo [1,2-b]pyridazines 5a-f was performed in acetic anhydride at 90 • C for 3-4 h. The acetic anhydride was used both as reaction solvent and reagent which allows simultaneous dehydration and cyclization of pyridazinone acids 2a-c to mesoionic compounds 3a-c (Scheme 3).  The new pyrrolo [1,2-b]pyridazine derivatives 5a-f were obtained by 1,3-dipolar cycloaddition reactions between the bicyclic mesoionic 1,3-dipoles 3a-c and methyl or ethyl propiolate as non-symmetrical acetylenic dipolarophiles, with yields between 41-52%. The mesoionic oxazolopyridazinones 3a-c were in situ generated by the action of acetic anhydride on the acids 2a-c. The generation of mesoionic 1,3-dipoles and cycloaddition reaction to form pyrrolo [1,2-b]pyridazines 5a-f was performed in acetic anhydride at 90 °C for 3-4 h. The acetic anhydride was used both as reaction solvent and reagent which allows simultaneous dehydration and cyclization of pyridazinone acids 2a-c to mesoionic compounds 3a-c (Scheme 3). The reaction mechanism of the obtaining of new pyrrolo [1,2-b]pyridazines 5a-f implies in the first step the formation of mesoionic compounds 3 from acids 2. The mesoionics 3 react as 1,3-dipoles 3A with acetylenic dipolarophiles giving tricyclic intermediates 4 which, in the reaction conditions, eliminate carbon dioxide resulting in the corresponding pyrrolo [1,2-b]pyridazines having the ester group in the 5 position. The formation of the regioisomeric pyrrolo[1,2-b]pyridazines 7 from mesomeric form 3B and intermediates 6 was not observed by NMR analysis of the crude reaction product. The regioselectivity of cycloaddition reaction and structures of the new compounds 5a-f were assigned by NMR and IR spectroscopy and confirmed by X-ray diffraction for the representative compound 5a. The reaction mechanism of the obtaining of new pyrrolo [1,2-b]pyridazines 5a-f implies in the first step the formation of mesoionic compounds 3 from acids 2. The mesoionics 3 react as 1,3-dipoles 3A with acetylenic dipolarophiles giving tricyclic intermediates 4 which, in the reaction conditions, eliminate carbon dioxide resulting in the corresponding pyrrolo [1,2-b]pyridazines having the ester group in the 5 position. The formation of the regioisomeric pyrrolo[1,2-b]pyridazines 7 from mesomeric form 3B and intermediates 6 was not observed by NMR analysis of the crude reaction product. The regioselectivity of cycloaddition reaction and structures of the new compounds 5a-f were assigned by NMR and IR spectroscopy and confirmed by X-ray diffraction for the representative compound 5a.
The 1 H-NMR data confirm the proposed regioselectivity of 3 + 2 cycloaddition, the ester groups of cycloadducts being in the 5 position of the pyrrolo[1,2-b]pyridazine ring. In diluted solutions, the pyrrolic proton H-6 appears as a triplet due to the coupling with methylenic protons of the ethyl group in the 7 position (JH6-CH2~0. 9 Hz). The multiplicity of pyrrolic proton indicated that the only possible position for the hydrogen atom is in the 6 position of the pyrrolopyridazine ring. In the case when the cycloaddition had reversed regiochemistry, the pyrrolic proton would be in the 5 position and the coupling would not occur. Also, the absence in the spectra of these new compounds of the CH proton signals from the butanoic acid fragment in the intermediate acids (5.53-5.66 ppm) confirms the cycloaddition reaction. The 13 C-NMR spectra present the expected signals, the main feature being the chemical shifts attributed to the carbonyl carbon of the ester groups which are in the range 164.5-165.1 ppm. The signal for C-6 from the pyrrole ring chemical has chemical shifts of 112.6-112.8 ppm. Compared to the precursor acids, the IR spectra of pyrrolopyridazines reveal a single absorption band, in the region 1688-1666 cm −1 , due to the stretching vibration of the C=O ester group.
According to X-ray crystallography, compound 5a crystallizes in the P-1 space group of the triclinic system with two chemically identic, but crystallographic independent molecules (denoted as A and B) in the asymmetric part of the unit cell. As an example, the structure of molecule A is depicted in Figure 6. Similar to compounds 1c and 2b the aromatic fragment in two independent molecules A and B is also non-planar with the dihe- The 1 H-NMR data confirm the proposed regioselectivity of 3 + 2 cycloaddition, the ester groups of cycloadducts being in the 5 position of the pyrrolo[1,2-b]pyridazine ring. In diluted solutions, the pyrrolic proton H-6 appears as a triplet due to the coupling with methylenic protons of the ethyl group in the 7 position (J H6-CH2~0 . 9 Hz). The multiplicity of pyrrolic proton indicated that the only possible position for the hydrogen atom is in the 6 position of the pyrrolopyridazine ring. In the case when the cycloaddition had reversed regiochemistry, the pyrrolic proton would be in the 5 position and the coupling would not occur. Also, the absence in the spectra of these new compounds of the CH proton signals from the butanoic acid fragment in the intermediate acids (5.53-5.66 ppm) confirms the cycloaddition reaction. The 13 C-NMR spectra present the expected signals, the main feature being the chemical shifts attributed to the carbonyl carbon of the ester groups which are in the range 164.5-165.1 ppm. The signal for C-6 from the pyrrole ring chemical has chemical shifts of 112.6-112.8 ppm. Compared to the precursor acids, the IR spectra of pyrrolopyridazines reveal a single absorption band, in the region 1688-1666 cm −1 , due to the stretching vibration of the C=O ester group.
According to X-ray crystallography, compound 5a crystallizes in the P-1 space group of the triclinic system with two chemically identic, but crystallographic independent molecules (denoted as A and B) in the asymmetric part of the unit cell. As an example, the structure of molecule A is depicted in Figure 6. Similar to compounds 1c and 2b the aromatic fragment in two independent molecules A and B is also non-planar with the dihedral angle of 26.82(6) • and 16.42(6) • , respectively. It is to note, that the main crystal packing motif is determined by a system of C-H···O hydrogen bonding and essentially arises from the parallel packing of a one-dimensional supramolecular array running along the b axis, as depicted in Figure 7.
Selected crystallographic data and structure refinement details for compounds 1c, 2b, and 5a are provided in Table 1.
dral angle of 26.82(6)° and 16.42(6)°, respectively. It is to note, that the main crystal packing motif is determined by a system of C-H···O hydrogen bonding and essentially arises from the parallel packing of a one-dimensional supramolecular array running along the b axis, as depicted in Figure 7.  Selected crystallographic data and structure refinement details for compounds 1c, 2b, and 5a are provided in Table 1.   The variation of rootlet lengths by compounds, concentration, and day of measurement are presented in Figure 8. There was good consistency between the parametric and robust mixed effects models with respect to the influence of the variables analyzed, but because of a number of outliers and considering the small differences, we here report the results for the robust model. As expected, root length increases with time (day of measurement) (p < 0.001) and there was generally a concentration-dependent inhibitory effect of the three first compounds (2a-c). There was no statistically significant difference between 2a and 2b, whereas for 2c there were significant interactions between this derivative and concentration (particularly for the 500 µM-p < 0.001, 100 µM-p = 0.023, and 50 µM-p < 0.001 concentrations). The sense of the interactions is shown in Figure 9a. In the case of pyrrolo[1,2-b]pyridazines 5a-c and 5f, the root length also increased with time (day of measurement) (p < 0.001) (Figure 8). Considering a model that included interactions between compounds and concentration (as indicated by AIC to guide the model selection) there was no statistically significant main effects for these (p = 1.00), and for most concentrations, but for 5b and 5c there were several significant compound-concentration interactions (at 500 µM for 5b, and 100 and 1000 µM for 5c, p = 0.060, 0.010, and 0.023; the sense of the interactions is shown in Figure 9b. A simpler model, that excluded compoundconcentration interactions (as suggested by using BIC instead of AIC to guide model selection), indicated that 5b and 5c had significantly stronger phytotoxic effects than 5a (p < 0.001), whereas 5f did not differ significantly from 5a (p = 0.121). The compound 5e was analyzed alone; therefore, it was only compared with the control group. It showed a concentration-dependent inhibitory effect, statistically significant at the first two levels (1000 and 500 µM, respectively-p < 0.001), approaching the conventional significance threshold at 100 µM (p = 0.059) and not significant at the lower concentrations (p > 0.145) (Figure 8g).
The IC 50 values for those four compounds for which they could be estimated (monotonic concentration-dependent root length) are shown in Table 2. Based on the IC 50 value, 2b was the most phytotoxic (although the difference is small as compared with 2a), whereas 5e was the least phytotoxic. However, 5a-c and 5f seemed even less phytotoxic (IC 50 values could not be estimated for the latter, because of the absence of a monotonic relationship between concentration and root length- Figure 8). The microphotograph analysis showed that at the highest concentration tested (1000 µM) compounds 2a-c and 5e caused mitoinhibition, while compounds 5a-c caused only some mitotic film modifications. Among these, we mention: the oblique migration of chromosomes in metaphase and telophase (tropokinesis), the appearance of chromosomal bridges, or delayed chromosomes. These changes were also determined by compounds 2a-c and 5e at lower concentrations tested. Although compound 5a had no mitoinhibitory effect at 1000 µM, it did affect the cell walls, which had a wavy appearance. The same effect was observed for compound 5e, also appearing changes in the shape of the nuclei appeared. The migration of some chromosomes into the telophase was also delayed (e.g., 2b-1000 µM, 5b-1000 µM, 5a-100 µM, 2c-1000 µM, 5a-1000 µM, 5e-1000 µM; Figure 10).    The microphotograph analysis showed that at the highest concentration tested (1000 µM) compounds 2a-c and 5e caused mitoinhibition, while compounds 5a-c caused only some mitotic film modifications. Among these, we mention: the oblique migration of chromosomes in metaphase and telophase (tropokinesis), the appearance of chromosomal bridges, or delayed chromosomes. These changes were also determined by compounds 2a-c and 5e at lower concentrations tested. Although compound 5a had no mitoinhibitory effect at 1000 µM, it did affect the cell walls, which had a wavy appearance. The same effect was observed for compound 5e, also appearing changes in the shape of the nuclei appeared. The migration of some chromosomes into the telophase was also delayed (e.g., 2b-1000 µM, 5b-1000 µM, 5a-100 µM, 2c-1000 µM, 5a-1000 µM, 5e-1000 µM; Figure 10).

Animal Toxicity Assay Artemia franciscana Toxicity Assay
No lethality was observed on nauplii of Artemia franciscana Kellogg for all compounds assessed in concentrations up to 1000 µM, indicating a lack of acute toxicity of these compounds. Artemia nauplii are generally more sensitive to toxicants than rodents [47], and the fact that the compounds were devoid of lethality on nauplii indicates a low level of toxicity. For comparison purposes, for two known biocides-tetrakis(hydroxymethyl) phosphonium chloride (THPC) and trichloroisocyanuric acid (TCIC)-LC 50 values lower than 1 µM were determined in Artemia nauplii at 24 and 48 h [48]. The Artemia findings are in agreement with those of the phytotoxicity tests, where IC 50 values, when estimation was possible, were in the range of hundreds of µM (indicating low phytotoxicity).

Daphnia magna Toxicity Assay
At 24 h, except for compound 5a, for which a maximum 40% lethality was obtained, the maximum average L% was 15%, data that are in accordance with the results obtained on Artemia franciscana. At 48 h, compounds 2b and 2c showed no toxicity, compounds 2a, 5b, 5e, and 5f exhibited moderate toxicity, whereas for 5a LC 50 was 46.12 µM and for 5c was approximated to 106.8 µM. Though both compounds 5a and 5c exhibited toxicity, only for 5a the concentration was correlated with the effect. The high differences between the L% induced by these two compounds could be attributed to the solubility, rather than the chemical difference (Table 3, Figure 11). The high sensibility of Daphnia magna versus Artemia sp. was also observed in our previous studies on compounds with pyrrole structure [49].

Compound-Mediated Cytotoxicity Assays
The potential anti-proliferative effects of treatments with the new compounds under study were evaluated in vitro against solid tumor-derived cells of different histological origin vs. normal human endothelial cells. Therefore, several compound-mediated cytotoxicity assays were performed using three adherent tumor standardized cell lines derived from human colon adenocarcinoma LoVo [50][51][52][53], breast adenocarcinoma MCF-7 [49,54], and ovary adenocarcinoma SK-OV-3 [49,55], and compared to normal human umbilical vein endothelial cells (HUVEC) [56]. The cytotoxic activity of the newly synthesized compounds was compared to the one induced by cisplatin (Cis-Pt), 5-fluorouracil (5-FU), or doxorubicin (DOX), commonly used drugs for oncological treatments of cancers, and applied as positive controls throughout our experiments.
Thus, to discriminate between the compounds under study regarding their capacity to inhibit cell growth, tumor and normal cell cultures were treated with the new compounds or oncolytic drugs for 24 h or 48 h, and were further subjected to the MTS assay [52]; experimental data were calculated and percentages of cell viability were assessed for each compound under study.

Compound-Mediated Cytotoxicity Assays
The potential anti-proliferative effects of treatments with the new compounds under study were evaluated in vitro against solid tumor-derived cells of different histological origin vs. normal human endothelial cells. Therefore, several compound-mediated cytotoxicity assays were performed using three adherent tumor standardized cell lines derived from human colon adenocarcinoma LoVo [50][51][52][53], breast adenocarcinoma MCF-7 [49,54], and ovary adenocarcinoma SK-OV-3 [49,55], and compared to normal human umbilical vein endothelial cells (HUVEC) [56]. The cytotoxic activity of the newly synthesized compounds was compared to the one induced by cisplatin (Cis-Pt), 5-fluorouracil (5-FU), or doxorubicin (DOX), commonly used drugs for oncological treatments of cancers, and applied as positive controls throughout our experiments.
Thus, to discriminate between the compounds under study regarding their capacity to inhibit cell growth, tumor and normal cell cultures were treated with the new compounds or oncolytic drugs for 24 h or 48 h, and were further subjected to the MTS assay [52]; experimental data were calculated and percentages of cell viability were assessed for each compound under study. Therefore, the precursor acids 2a-c and corresponding pyrrolo[1,2-b]pyridazines 5a-c,f were tested for their potential cytotoxic activity. During the assays, increasing concentrations of the compounds, ranging from 6.25 to 400 mM, were added for 24 h or 48 h to cancer LoVo, SK-OV-3, MCF-7, and the reference HUVEC cells, previously cultured for 24 h in 96-well flat bottom plates. As positive controls of the tests, increasing concentrations of oncolytic drugs were also used: either 3.125 to 200 µM 5-FU and CisPt, or 0.625 to 40 µM DOX. Then, MTS reagent was added, and cells were incubated for 4 h at 37 • C in a 5% CO 2 humidified atmosphere. The absorbance values were spectrophotometrically read to a Dynex ELISA reader at λ = 492 nM. The cytotoxic effects of the compounds under study varied depending on concentration, treatment time, and cell type, as shown in Figures 12-16. cancer LoVo, SK-OV-3, MCF-7, and the reference HUVEC cells, previously cultured for 24 h in 96-well flat bottom plates. As positive controls of the tests, increasing concentrations of oncolytic drugs were also used: either 3.125 to 200 µM 5-FU and CisPt, or 0.625 to 40 µM DOX. Then, MTS reagent was added, and cells were incubated for 4 h at 37 °C in a 5% CO2 humidified atmosphere. The absorbance values were spectrophotometrically read to a Dynex ELISA reader at λ = 492 nM. The cytotoxic effects of the compounds under study varied depending on concentration, treatment time, and cell type, as shown in Figures 12-16.       When the cell responses to compound treatments were analyzed and the percentages of cell viability were calculated for each compound and cell line, the strongest cytotoxic dose-dependent effects of the new compounds were observed against the LoVo colon cancer cell line. Thus, cell viability percentages decrease more after 48 h treatments when compared to 24 h ones, in a dose-and time-dependent manner.
When the treatment time of LoVo cells was prolonged to 48 h, the cytotoxic effects of the new compounds were increased. Concentrations of 50 µM and 100 µM of compound 5a induced a decrease in cell viability to 65.35% and 58.18%, respectively, much lower than its precursor 2a. When concentrations of 5a were increased, the percentages of cell viability decreased more, to 52.48% for 200 µM, and 48.47% for 400 µM, compared to 2a, which for the same concentrations achieved the cell viability of 82.88% and 60.76%, respectively. The same effect was observed for the derivatives 5b and 5e that demonstrated stronger anticancer effects than their precursor, 2b: when 100 µM of 5b were used, the cell viability percentages decreased to 79.44%. When the treatment of 400 µM was applied, a stronger inhibition of cell viability was observed, to 60.33% for 5b, and 67.38% for 5e, compared to 81.11% cell viability induced by the precursor 2b.
Among the newly synthesized compounds under study, halogen-free acid 2a and its pyrrolo [1,2-b]pyridazines 5a, and acid 2c containing a chlorine atom, and corresponding pyrrolo [1,2-b]pyridazines 5c and 5f demonstrated the strongest cytotoxic effects against LoVo tumor colon cells, dose-dependent, both for 24 h and 48 h, some of them inducing a decrease less than 50% of cell viability when the highest concentration was used ( Figure 12). Thus, among the tested compounds containing a halogen atom grafted on the benzene ring, the presence of chlorine had a better effect on inhibiting the proliferation of LoVo cells compared to the fluorine atom.
When treatments with the compounds under study were applied in MCF-7 cell cultures, much lower inhibition of cell growth was observed, as compared to LoVo cells, both for 24 h and 48 h (Figure 13). A low anti-tumor effect measured through the cytotoxic activity was observed for 2a and 5f: when cells were treated for 48 h with 200 µM and 400 µM the cell viability percentages were between 97% and 94%, respectively, for both compounds. When treatment time was prolonged to 48 h, the cytotoxic effects of several compounds were amplified. The compound 5e used in concentrations between 100-400 µM induced a decrease in cell viability of less than 90%. The strongest cytotoxic activity was obtained when cells were treated with 400 µM of the derivatives 5b, 5e, and 5c, the treatments inducing a decrease in cells viability under to 89.7%, 73.13%, and 88.53%, respectively ( Figure 13).
When the SK-OV-3 cells were subjected to treatments with the new compounds, the same low anti-proliferative and drug resistance profile was observed as in the MCF-7 cell line, both for 24 h and 48 h. However, when cells were treated for 24 h with 100 µM, the cell viability percentages decreased to 95% or less. The increase in the concentrations to 200 µM and 400 µM induced a higher inhibition of ovary cell growth. The strongest effect was observed following 2a, 5b, 5e, and 2c treatments with 400 µM that decreased the cell viability to 89.33%, 77.96%, 87.46%, and 88.30%, respectively ( Figure 14).
When treatment time was prolonged till 48 h, cell viability percentages were slightly diminished following 2a, 5e, 2c, 5c, and 5f treatments, compared to 24 h incubation ( Figure 14). The strongest cytotoxic effect seemed to be achieved by treatments with 400 µM of the above compounds, the percentages of cell viability decreasing to 85.14% and 83.02%, for 2a and 5f, respectively. Although compound 5b had slightly less cytotoxicity at 48 h than at 24 h at 400 µM, it had the lowest percentages of cell viability at the highest concentrations (100 µM, 200 µM, 400 µM) compared to the other tested derivatives (Figure 14).
The normal HUVEC, used as reference cells of the assays, were treated for 24 h and 48 h with all the compounds under study, in the same experimental conditions as those performed on the cancer cell lines derived from various human solid adenocarcinomas.

Treatments of HUVEC cells for 24 h with scalar concentrations of new compounds had no
influence on cell growth or demonstrated low cytotoxicity, except 5f when cells were treated by 400 µM and the cell viability percentages diminished to 90% (Figure 15). Even when the treatment time was prolonged till 48 h, the inhibition of cell growth did not increase, 400 µM of 5f inducing a decrease in the cell viability to 91.57% (Figure 15). Therefore, the endothelial cells seemed not to be much affected by compound treatments, even used at high concentrations or prolonged time (Figure 15).
In addition, several specific oncolytic drugs, currently used in clinical treatments of solid tumors, were used throughout all the assays as positive controls. The percentages of cell viability decreased with the increase in the drug concentration, both for 24 h and 48 h treatments with 5-FU, CisPt, or DOX.
After 24 h treatments with the 200 µM of 5-FU and CisPt, the LoVo cell viability percentages decreased to 42.34% and 36.57%, while the prolonged time of treatment to 48 h increased the cytotoxic effect to 28.67% and 12.76% for 5-FU and CisPt, respectively, higher than the effects of 5a, 2c, or 5f compounds that demonstrated the best antitumor activity against colon cells (Figures 12 and 16).
Treatments In terms of IC 50 values, 5a, 2c, and 5f displayed the best cytotoxic activities on LoVo cells, when treatment time was prolonged to 48 h (Table 4), and therefore these compounds might further be used in future functional studies on colon cancer cell lines.  IC 50 values represent the concentrations of a tested compound required to inhibit 50% of the cell growth, with respect to the control sample (in the absence of the tested compound), and they are presented as mean ± SD of three independent experiments; NT-not tested; ND-not determined due to lethality values.

Prediction of the Molecular Mechanism of Action
In order to better evaluate the antiproliferative effect of new 2-phenylpyrrolo[1,2b]pyridazine and their 3(2H)pyridazinone acids derivatives, a PASS analysis was performed to indicate the post-probable biological targets for these. The analysis returned a number of 1789 possible targets for which the Pa values were higher than the corresponding Pi values. The Pa values were higher than 0.7 for only 19 targets. Of these targets, only the proteasome ATPase is correlated with anticancer effects. The use of proteasome inhibitors has proven to be clinically successful in treating various types of cancer, especially blood cancers. The proteasomal ATPase provides the energy for the substrate translocation and facilitates protein degradation [57]. This potential target was observed for the 3(2H)pyridazinone derivatives, and not for the structurally similar pyrrolo[1,2-b]pyridazine derivatives. The analysis of the predicted pharmacological effects revealed other ATPases as potential targets, like chloride-transporting ATPase, polyamine-transporting ATPase, phospholipidtranslocating ATPase, proton-exporting ATPase, or myosin ATPase. These results indicate that the new compounds could function as a structural analog of ATP. This observation led to the search for other ATP-dependent targets and thus revealed significant Pa values for a few kinases, like sphinganine kinase, NADH kinase, and N-acylmannosamine kinase. Interestingly, the calculated Pa values were low in the case of protein kinases.
We performed a series of theoretical structure modifications on the pyridazinone scaffold in order to observe the impact of various structural features on the compound's potential to inhibit the proteasomal ATPase. The structures and the results are presented as Pa values in the following figure (Figure 17).
IC50 values represent the concentrations of a tested compound required to inhibit 50% of the cell growth, with respect to the control sample (in the absence of the tested compound), and they are presented as mean ± SD of three independent experiments; NT-not tested; ND-not determined due to lethality values.

Prediction of the Molecular Mechanism of Action
In order to better evaluate the antiproliferative effect of new 2-phenylpyrrolo[1,2b]pyridazine and their 3(2H)pyridazinone acids derivatives, a PASS analysis was performed to indicate the post-probable biological targets for these. The analysis returned a number of 1789 possible targets for which the Pa values were higher than the corresponding Pi values. The Pa values were higher than 0.7 for only 19 targets. Of these targets, only the proteasome ATPase is correlated with anticancer effects. The use of proteasome inhibitors has proven to be clinically successful in treating various types of cancer, especially blood cancers. The proteasomal ATPase provides the energy for the substrate translocation and facilitates protein degradation [57]. This potential target was observed for the 3(2H)pyridazinone derivatives, and not for the structurally similar pyrrolo[1,2-b]pyridazine derivatives. The analysis of the predicted pharmacological effects revealed other ATPases as potential targets, like chloride-transporting ATPase, polyamine-transporting ATPase, phospholipid-translocating ATPase, proton-exporting ATPase, or myosin ATPase. These results indicate that the new compounds could function as a structural analog of ATP. This observation led to the search for other ATP-dependent targets and thus revealed significant Pa values for a few kinases, like sphinganine kinase, NADH kinase, and N-acylmannosamine kinase. Interestingly, the calculated Pa values were low in the case of protein kinases.
We performed a series of theoretical structure modifications on the pyridazinone scaffold in order to observe the impact of various structural features on the compound's potential to inhibit the proteasomal ATPase. The structures and the results are presented as Pa values in the following figure (Figure 17). The structural modifications indicate that the presence of the halogen atom reduces the Pa values in all cases. The presence of the carboxyl group, as well as the presence of the 1-position nitrogen atom, seem to be important for the proteasomal ATPase interaction.

Chemistry
All reagents were of analytical grade and were purchased from commercial supplies (Sigma-Aldrich, Merck (Darmstadt, Germany), and Alfa Aesar (Haverhill, MA, USA)). The melting points, m.p., were determined on a Boëtius hot plate microscope (Carl Zeiss, Jena, Germany) and are uncorrected. The IR spectra were registered on a Vertex 70 spectrometer (Bruker Optik GmbH, Ettlingen, Germany) in ATR modes. The NMR spectra were recorded on a Varian Gemini 300BB spectrometer (Varian, Palo Alto, CA, USA) operating at 300 MHz for 1 H and 75 MHz for 13 C in CDCl 3 or CDCl 3 and TFA mixture as solvents, using TMS as the internal standard. The chemical shifts (δ) are reported in parts per million (ppm) and all coupling constants values J are given in hertz (Hz). The multiplicities are abbreviated as s-singlet, d-doublet, dd-doublet of doublets, t-triplet, q-quartet, qd-quartet of doublets, m-multiplet, b-broad. Single-crystal X-ray diffraction data were collected on an Oxford-Diffraction XCALIBUR Eos CCD diffractometer with graphite-monochromated Mo-Kα radiation. The unit cell determination and data integration were carried out using the CrysAlisPro package from Oxford Diffraction [58]. Multi-scan correction for absorption was applied. The structures were solved with program SHELXT using the intrinsic phasing method and refined by the full-matrix least-squares method on F2 with SHELXL [59,60]. Olex2 was used as an interface to the SHELX programs [61]. Non-hydrogen atoms were refined anisotropically. Hydrogen atoms were located in idealized positions and refined using a riding model (Supplementary Materials). The elemental analysis was achieved on a Costech Instruments EAS 32 (Costech Analytical Technologies, Valencia, CA, USA).

General Procedure for the Synthesis of Esters 1a-c
The esters 1a-c were obtained from corresponding 3(2H)pyridazinone derivatives by an N-alkylation procedure described in the literature by McMillan and King [44,45].
Ethyl 2-(6-oxo-3-phenylpyridazin-1-yl)butanoate (1a). The compound was purified by crystallization from ethanol as colorless crystals with mp 56-58 • C; Yield 67%. Anal. Calcd. for C 16  The acids 2a-c were obtained from alkaline hydrolysis of the corresponding esters by a procedure described in the literature by McMillan and King [44,45]. A mixture of the corresponding pyridazinone ester 1a-c (50 mmol) and 100 mL of 10% sodium hydroxide solution was refluxed for 2 h. The reaction mixture was subsequently acidified at pH = 2 with 10% hydrochloric acid solution and the colorless precipitate formed was filtered off, washed with water, and then dried and purified by crystallization from a suitable solvent. The pyridazinone acids 2a-c (15 mmol) were dissolved in 20 mL of hot acetic anhydride. Over the solution cooled to room temperature, 19 mmol of activated alkyne was added under stirring and the reaction mixture was heated at 90 • C for 3 h. The reaction mixture was cooled and then 30 mL of ethanol was added when a precipitate was obtained. The yellow fluorescent crystals were separated by filtration and were crystallized from alcohol (methanol, ethanol).

Phytotoxicity Evaluation
Phytobiological testing (Triticum test) was performed by the Constantinescu method which consists in determining the maximum active dilution of a compound. Depending on the duration of action, it can influence root elongation and the cryokinetic film. It used wheat (Triticum vulgare Mill., Gramineae) embryonic roots as biological material because they proved to be sensitive both to the action of plant extracts [62] due to their active principles [63] and to the action of synthetic compounds [29]. Embryonic wheat roots were obtained by germinating homogeneous wheat caryopses in Linhart pots. Then the caryopses with a main root length of 1 cm were placed in the test solutions. For the determination of the action of each compound, five dilutions in the concentration range of 10-1000 µM were obtained and 11 caryopses were placed in them. Petri dishes containing 15 mL of diluted solution were kept under constant conditions of temperature (25 • C), and humidity (60%), in the absence of light. The main root was measured for three days, every 24 h considering this period to be the most active in terms of root elongation. The results were expressed in comparison with a 1% DMSO control.
Microscopic examination of Triticum vulgare root tips followed the mitotic film changes induced by the tested compounds. Observations were made after 24 h of contact of the caryopses with the test solutions. The study was made in comparison with DMSO control maintained under the same conditions as the samples. To obtain microscopic preparations, sectioning of wheat embryonic roots was carried out at about 5 mm from the tip and stained with dilute acetic acid stain according to the La Cour procedure [49]. The examination was conducted on a Euromex oxion series 110-240 V/50-60 Hz microscope with digital camera CEMEX 5 DC 5000 C and 40× and 100× lenses with cedar oil immersion (Sigma-Aldrich St. Louis, MO, USA).

Animal Toxicity Assay Artemia franciscana Toxicity Assay
The toxicity of the newly synthesized compounds was investigated by the Artemia test because the larvae of these primitive aquatic arthropods present in salt lakes are sensitive to a wide variety of compounds [29,64].
The biological material was commercially sourced (S.K. Trading, Thailand, which repackaged them from Ocean Star International, London, UK) and the artificial marine solution was obtained by dissolving CoralMarine Grotech sea salt in water. The necessary hatching conditions (temperature of 25 • C and continuous oxygenation) were ensured for 48 h. Dilutions in the range of 60-1000 µM were obtained from stock solutions of the new compounds. These were placed in 24-well plates in triplicate. Ten to twenty nauplii were transferred into the respective wells. After incubation for 24 h and 48 h, respectively, live and dead nauplii were counted from each well. The negative control was marine solution with 1% DMSO.

Daphnia magna Toxicity Assay
Young organisms of Daphnia magna were selected according to their size from a parthenogenetic culture maintained in an artificial medium for 24 h before the bioassay. The determination was conducted in tissue culture plates with 12 wells (Greiner Bio-One, Monroe, NC, USA), with 10 organisms in each well, and a final volume of 3 mL per sample [65,66]. As a negative control, DMSO was used at a concentration of 1%. All compounds were tested at six different concentration levels, ranging from 12.5 to 500 µg/mL. All assessments were performed in duplicate. Lethality was observed at both 24 h and 48 h, and the LC 50 values were determined for each compound using the least square fit method. The LC 50 and the 95% confidence interval (CI95%) for LC 50 were also calculated using GraphPad Prism v 5.1 software, employing the same method.

Prediction of the Molecular Mechanism of Action
The newly synthesized compounds and some theoretical derivatives of their main scaffold were transformed as SMILES codes and inputted into the web application PASS, version 2.0. This algorithm uses an array of fragment types of descriptors to evaluate the potential interactions of the input compound with a large number of biologically relevant targets. The returned results consist of a list of activities and the probabilities of the compound to be active (Pa) and the probability to be inactive (Pi) [67].

Statistical Analyses
Statistical analyses were performed using the computing and programming environment R, R, v. 4.2.1 [68], under Rstudio, v. 2022.07.2+576 "Spotted Wakerobin" for Windows (RStudio, PBC, Boston, 2022), both for the Triticum and Artemia tests. It used a parametric mixed-effects model (R package "lme4") [69] and a robust mixed-effects model (R package "robustlmm") [70], in which root length measurements (Triticum) from all three days were used as the dependent variable, whereas compound, concentration and time were treated as fixed effects, with time (day of measurement) also treated as a random effect. Assessing statistical significance for mixed-effects statistical models is controversial and complex, but as a pragmatic way of working, we have estimated p-values using the Kenward-Rogers approximation (R package "sjPlot") [71]. A variety of R base functions and R packages were used to diagnose the regression models ("car" [72], "MASS" [73], and "gvlma" [74]). Mixed boxplot-dotplot plots were generated using the "ggplot2" package [75].
The "drc" R package [76] was used to estimate IC 50 values for the Triticum bioassay by nonlinear modeling. For Triticum, the relationship between root length and concentration was modeled using Weibull functions with 2, 3, or 4 parameters, depending on the data distribution, the models being selected from a range of several models with different functions and parameters, based on the Akaike's information criterion (AIC).

Cell Cultures and Treatments
For the evaluation of the in vitro potential anti-proliferative effects of treatments with the new compounds under study against solid tumor-derived cells, several compoundmediated cytotoxicity assays were performed on three adherent tumor standardized cell lines, and normal human endothelial cells, used as control: the MCF-7 human breast adenocarcinoma and SK-OV-3 human ovary adenocarcinoma cell lines were provided from European Collection of Authenticated Cell Cultures (ECACC), while LoVo, human colorectal adenocarcinoma cell line, and HUVEC human umbilical vein endothelial cells were purchased from American Type Culture Collection (ATCC) [49].
Adherent cells were cultivated in DMEM/F12 medium added with 2 mM L-glutamine and 10% fetal bovine serum, 100 units/mL penicillin, 100 µg/mL streptomycin (Sigma Aldrich, St. Louis, MO, USA) and incubated at 37 • C in 5% CO 2 humidified atmosphere. The stock solutions for cell treatments were prepared by dissolving the synthesized compounds in a minimum amount of DMSO. Working dilutions were prepared from the stock solutions in culture medium before each treatment assay. After 24 h, when cell cultures achieved around 70% confluence, treatments were applied for various periods of time with different concentrations of synthesized compounds or oncolytic drugs, used as positive controls.

MTS Cytotoxicity Assay
The cytotoxic activity of the new synthetized compounds was compared to that induced by several drugs that are commonly used for oncological treatments: cisplatin (Cis-Pt), 5-fluorouracil (5-FU), or doxorubicin (DOX), used as positive controls throughout our experiments. Therefore, cell cultures treated with the new compounds or oncolytic drugs for 24 h or 48 h were further subjected to a colorimetric cell viability method, the MTS assay. The absorbance of probes was read, data were calculated, and percentages of cell viability were assessed.
The evaluation of the compound-induced cytotoxicity was made using the CellTiter 96 Aqueous One Solution Cell Proliferation Assay (Promega, Madison, WI, USA), a reagent that contains both MTS (3-(4,5-dimethylthiazol-2-yl)-5-(3-carboxymethoxyphenyl)-2-(4sulfophenyl)-2H-tetrazolium, inner salt) and PES (phenazine methosulfate, a cationic dye with high chemical stability that binds to MTS and forms a stable solution). The assay is based on the ability of the metabolically active cells to reduce the yellow tetrazolium salt MTS to a compound that is soluble in culture medium, the colored formazan, followed by the spectrophotometric evaluation of its concentration.
Briefly, 1.5 × 10 4 cancer or normal cells were cultured in 100 µL/well for 24 h. After the culture supernatants were discarded, cells were treated for additional 24 h or 48 h with increasing concentrations of new compounds or oncolytic drugs. Following the specific treatments, in each well a volume of 20 µL of coloring mixture reagent of MTS and PES was added, and then the plates were incubated with mild agitation every 20 min for 4 h at 37 • C. The color developed during incubation was spectrophotometrically quantified at λ = 492 nm using a Dynex ELISA reader (DYNEX Technologies-MRS, Chantilly, VA, USA) [51,52,55].
Data were expressed as percentages of cell viability of the treated cells, and were calculated and compared to the untreated cells (considered 100% viable), using the formula: The cell viability data were expressed as the mean values ± standard deviations (SD) of three different experiments (n = 3). In addition, the MTS assay was performed in the same experimental conditions for the evaluation of DMSO potential cytotoxicity, using serial dilutions of the reagent; no cell cytotoxicity was observed in DMSO concentrations lower than 1% [49,52]. Moreover, a parallel experiment was performed in the absence of cells, with all the concentrations of the compounds being tested for their potential interference with MTS reagents; then, their absorbance values were extracted during calculations.

Statistical Analysis
All cytotoxicity assays were performed in triplicate (n = 3) and expressed as mean values ± standard deviations (SD). Statistical analyses were carried out using one-way analysis of variance (ANOVA) test; p values < 0.05 were considered statistically significant.

Conclusions
New pyrrolo [1,2-b]pyridazines were synthesized, with moderate yields, by 3 + 2 cycloaddition reaction between mesoionic oxazolo-pyridazinones and terminal activated alkyne dipolarophiles and their cytotoxicity was evaluated. The obtaining of mesoionic oxazolo-pyridazinones intermediate took place in situ from the 3(2H)pyridazinone acids in the presence of acetic anhydride. In the first stage, 3(2H)pyridazinone esters were synthesized by multi-step synthesis that led to the corresponding acids by hydrolysis. The spectral analysis (IR, 1 H-, 13 C-NMR), X-ray diffraction, and elemental analysis confirmed the structures of the synthesized compounds. The toxicity studies on Triticum aestivum L. cells indicated that the toxicity was low for all compounds, with IC 50 higher than 200 µM, the acids 2b and 2a having the lowest values. The toxicity studies on crustaceans indicated that except for 5a and 5c could have a toxicity effect, the newly synthetized compounds showed moderate or no toxicity on Daphnia, while on Artemia nauplii no lethality was induced. The cytotoxic effects of the compounds on three human adenocarcinoma-derived adherent cell lines (colon LoVo, ovary SK-OV-3, and breast MCF-7) and on HUVEC endothelial cells highlighted that several of these display satisfactory anticancer activities, and very low cytotoxic effects towards normal cells. The in vitro compound-mediated cytotoxicity assays demonstrated dose-and time-dependent cytotoxic activity for several newly synthesized compounds, the highest anti-tumor properties, based on the cell viability, being assessed for acid 2a and its derivative 5a, and for 2c and the derivatives 5c and 5f, especially against colon cancer cells. Among them, compounds 5a, 2c, and 5f showed the lowest IC 50 values on the LoVo cell line. The obtained results prompted us to improve the anti-cancer properties of the most promising tested compounds, and further expand our studies on their biological activities, in order to modulate the chemo-sensitivity of tumor cells to innovative drug treatments that might overcome or reverse the chemo-resistance usually found in cancer patients after several cycles of chemotherapy.

Data Availability Statement:
The data presented in this study are available upon request from the corresponding authors.