Application of Dendrimers in Anticancer Diagnostics and Therapy

The application of dendrimeric constructs in medical diagnostics and therapeutics is increasing. Dendrimers have attracted attention due to their compact, spherical three-dimensional structures with surfaces that can be modified by the attachment of various drugs, hydrophilic or hydrophobic groups, or reporter molecules. In the literature, many modified dendrimer systems with various applications have been reported, including drug and gene delivery systems, biosensors, bioimaging contrast agents, tissue engineering, and therapeutic agents. Dendrimers are used for the delivery of macromolecules, miRNAs, siRNAs, and many other various biomedical applications, and they are ideal carriers for bioactive molecules. In addition, the conjugation of dendrimers with antibodies, proteins, and peptides allows for the design of vaccines with highly specific and predictable properties, and the role of dendrimers as carrier systems for vaccine antigens is increasing. In this work, we will focus on a review of the use of dendrimers in cancer diagnostics and therapy. Dendrimer-based nanosystems for drug delivery are commonly based on polyamidoamine dendrimers (PAMAM) that can be modified with drugs and contrast agents. Moreover, dendrimers can be successfully used as conjugates that deliver several substances simultaneously. The potential to develop dendrimers with multifunctional abilities has served as an impetus for the design of new molecular platforms for medical diagnostics and therapeutics.


Introduction
The potential applications of dendrimers in many fields of science and medicine are vast [1]. Recently, there have been a number of reports in the literature that have demonstrated the potential of using dendrimers, inter alia, as theranostic agents and in genetic engineering. There has been intense interest in the development of dendrimers as carriers for pharmaceutical substances. Moreover, research on the use of dendrimers as MRI contrast agents is of interest since dendrimer-based contrast agents shorten relaxation times and improve contrast and pharmacokinetics simultaneously. The standard contrast used for MRI examination contains gadolinium (Gd 3+ ) complexes with organic chelating acids, such as DOTA (1,4,7,10-tetrazacyclodecyl-1,4,7,10-tetraacetic acid) or DTPA (diethylenetriaminepentaacetic acid) [1], which, in their pure forms, are highly toxic and accumulate in the liver and bones [2]. The introduction of dendrimer-based contrast agents or therapeutic substances for clinical applications is associated with a determination of the safety of use as well as the verification of their toxicity and biocompatibility. Due to the fact that dendrimers are highly modifiable molecules (Figure 1), their potential as safe drug carriers and contrast agents has been explored [3]. Dendrimers are characterized by a symmetrical, highly branched three-dimensional structure with a strictly defined molecular weight [4]. They are similar in structure to a sphere. The structural feature consists of a core from which dendrons radiate ( Figure 2). The terminal ends of dendrons can be covalently or non-covalently attached to biologically active molecules, drugs, genes, contrast agents, and other reporter groups [5]. Dendrimers that have terminal amine groups (-NH2) or hydroxyl groups (-OH) are termed complete dendrimers, while those that terminate with carboxyl groups are termed half-dendrimers [6]. Depending on the dendrimer generation, the packing density of the molecules in the surface region increases, which inhibits their further growth [7]. As a result, dendrimer molecules can only be synthesized up to generation 10. Regardless of how dendrimers are synthesized, the method of making dendrimers is based on a repeated sequence of several reactions. Each duplication results in the synthesis of an increasingly higher generation of the dendrimer structure. In addition, each successive generation benefits from doubling the number of active residues on the surface of the molecule. The synthesis of dendrimers makes it possible to control each stage of generation, resulting in a strictly defined structure [8]. There are various types of dendrimers, Dendrimers are characterized by a symmetrical, highly branched three-dimensional structure with a strictly defined molecular weight [4]. They are similar in structure to a sphere. The structural feature consists of a core from which dendrons radiate ( Figure 2). The terminal ends of dendrons can be covalently or non-covalently attached to biologically active molecules, drugs, genes, contrast agents, and other reporter groups [5]. Dendrimers are characterized by a symmetrical, highly branched three-dimen structure with a strictly defined molecular weight [4]. They are similar in structu sphere. The structural feature consists of a core from which dendrons radiate ( Fig  The terminal ends of dendrons can be covalently or non-covalently attached to b cally active molecules, drugs, genes, contrast agents, and other reporter groups [5]  Dendrimers that have terminal amine groups (-NH2) or hydroxyl groups (-O termed complete dendrimers, while those that terminate with carboxyl groups are t half-dendrimers [6]. Depending on the dendrimer generation, the packing density molecules in the surface region increases, which inhibits their further growth [7 result, dendrimer molecules can only be synthesized up to generation 10. Regard how dendrimers are synthesized, the method of making dendrimers is based o peated sequence of several reactions. Each duplication results in the synthesis of creasingly higher generation of the dendrimer structure. In addition, each successiv eration benefits from doubling the number of active residues on the surface of the cule. The synthesis of dendrimers makes it possible to control each stage of gene resulting in a strictly defined structure [8]. There are various types of dend Dendrimers that have terminal amine groups (-NH 2 ) or hydroxyl groups (-OH) are termed complete dendrimers, while those that terminate with carboxyl groups are termed half-dendrimers [6]. Depending on the dendrimer generation, the packing density of the molecules in the surface region increases, which inhibits their further growth [7]. As a result, dendrimer molecules can only be synthesized up to generation 10. Regardless of how dendrimers are synthesized, the method of making dendrimers is based on a repeated sequence of several reactions. Each duplication results in the synthesis of an increasingly higher generation of the dendrimer structure. In addition, each successive generation benefits from doubling the number of active residues on the surface of the molecule. The synthesis of dendrimers makes it possible to control each stage of generation, resulting in a strictly defined structure [8]. There are various types of dendrimers, including phosphorus (P-dendrimers) [9], polyamidoamines (PAMAM) [10], polyamines [11], polyamides [12], polypeptides [13], polyesters [14], carbosilicates (CBS) [15], poly(L-lysine) dendrimers (PLL) [16], polyesters (PGLSA-OH) [17], poly (2,2) acid dendrimers -bis (hydroxymethyl) propionic (bis-MPA) [18], and peptide dendrimers [19]. In addition, we also distinguish dendrimers based on sugar units and oligonucleotides. The most frequently described dendrimers in the literature are PAMAM dendrimers and polypropyleneimine (PPI) dendrimers. For instance, recent reports have described the interaction between rose bengal and cationic PAMAM and PPI dendrimers of the third and fourth generation [20]. One method of synthesizing dendrimers is the divergent method. The preferred dendrimer is formed by the attachment of successive monomer layers to the dendrimer core ( Figure 3). including phosphorus (P-dendrimers) [9], polyamidoamines (PAMAM) [10], polyamines [11], polyamides [12], polypeptides [13], polyesters [14], carbosilicates (CBS) [15], poly(Llysine) dendrimers (PLL) [16], polyesters (PGLSA-OH) [17], poly (2,2) acid dendrimersbis (hydroxymethyl) propionic (bis-MPA) [18], and peptide dendrimers [19]. In addition, we also distinguish dendrimers based on sugar units and oligonucleotides. The most frequently described dendrimers in the literature are PAMAM dendrimers and polypropyleneimine (PPI) dendrimers. For instance, recent reports have described the interaction between rose bengal and cationic PAMAM and PPI dendrimers of the third and fourth generation [20]. One method of synthesizing dendrimers is the divergent method. The preferred dendrimer is formed by the attachment of successive monomer layers to the dendrimer core ( Figure 3). The divergent, synthetic method of dendrimer synthesis causes a formation of successive layers of monomers, resulting in the increasing branching of the dendrimer arms. The above fact may result in the loss of reactivity of terminal functional groups. The second method of synthesizing dendrimers is the convergent method [8]. In this method, the first step involves the synthesis of the branched arms of the dendrimers, while the second step of the synthesis involves joining them with a multifunctional core. A schematic presentation of the convergent method of dendrimers is shown below (Figure 4). The use of this method allows for greater control during the synthesis, resulting in products that are free from defects.

Different Generations of Polyamidoamine (PAMAM) Dendrimers
Commonly used dendrimers that are either synthesized or obtained commercially are polyamidoamine type cationic dendrimers (PAMAMs), which can be formed up to 10 generations. A characteristic feature of PAMAM dendrimers is their structure, which consists of a core in the form of ammonia or ethylenediamine (EDA) and attached molecules of methyl acrylate and ethylenediamine. Due to their specific, characteristic structure with regions of free spaces (cavities), it is possible to use them as carriers for anti-cancer drugs, gene transfection, or non-proton imaging. Depending on the generation of dendrimers, their size increases. The size of the dendrimers will be related to the packing density of the molecules on the surface of the dendrimer. Tomalia et al. described a linear increase in diameter and an exponential increase in the number of surface groups for PAMAM dendrimers from the core to the seventh generation (G2-G7), with diameters of G2 = 2.0 The divergent, synthetic method of dendrimer synthesis causes a formation of successive layers of monomers, resulting in the increasing branching of the dendrimer arms. The above fact may result in the loss of reactivity of terminal functional groups. The second method of synthesizing dendrimers is the convergent method [8]. In this method, the first step involves the synthesis of the branched arms of the dendrimers, while the second step of the synthesis involves joining them with a multifunctional core. A schematic presentation of the convergent method of dendrimers is shown below (Figure 4). The use of this method allows for greater control during the synthesis, resulting in products that are free from defects. including phosphorus (P-dendrimers) [9], polyamidoamines (PAMAM) [10], polyamines [11], polyamides [12], polypeptides [13], polyesters [14], carbosilicates (CBS) [15], poly(Llysine) dendrimers (PLL) [16], polyesters (PGLSA-OH) [17], poly (2,2) acid dendrimersbis (hydroxymethyl) propionic (bis-MPA) [18], and peptide dendrimers [19]. In addition, we also distinguish dendrimers based on sugar units and oligonucleotides. The most frequently described dendrimers in the literature are PAMAM dendrimers and polypropyleneimine (PPI) dendrimers. For instance, recent reports have described the interaction between rose bengal and cationic PAMAM and PPI dendrimers of the third and fourth generation [20]. One method of synthesizing dendrimers is the divergent method. The preferred dendrimer is formed by the attachment of successive monomer layers to the dendrimer core ( Figure 3). The divergent, synthetic method of dendrimer synthesis causes a formation of successive layers of monomers, resulting in the increasing branching of the dendrimer arms. The above fact may result in the loss of reactivity of terminal functional groups. The second method of synthesizing dendrimers is the convergent method [8]. In this method, the first step involves the synthesis of the branched arms of the dendrimers, while the second step of the synthesis involves joining them with a multifunctional core. A schematic presentation of the convergent method of dendrimers is shown below (Figure 4). The use of this method allows for greater control during the synthesis, resulting in products that are free from defects.

Different Generations of Polyamidoamine (PAMAM) Dendrimers
Commonly used dendrimers that are either synthesized or obtained commercially are polyamidoamine type cationic dendrimers (PAMAMs), which can be formed up to 10 generations. A characteristic feature of PAMAM dendrimers is their structure, which consists of a core in the form of ammonia or ethylenediamine (EDA) and attached molecules of methyl acrylate and ethylenediamine. Due to their specific, characteristic structure with regions of free spaces (cavities), it is possible to use them as carriers for anti-cancer drugs, gene transfection, or non-proton imaging. Depending on the generation of dendrimers, their size increases. The size of the dendrimers will be related to the packing density of the molecules on the surface of the dendrimer. Tomalia et al. described a linear increase in diameter and an exponential increase in the number of surface groups for PAMAM dendrimers from the core to the seventh generation (G2-G7), with diameters of G2 = 2.0

Different Generations of Polyamidoamine (PAMAM) Dendrimers
Commonly used dendrimers that are either synthesized or obtained commercially are polyamidoamine type cationic dendrimers (PAMAMs), which can be formed up to 10 generations. A characteristic feature of PAMAM dendrimers is their structure, which consists of a core in the form of ammonia or ethylenediamine (EDA) and attached molecules of methyl acrylate and ethylenediamine. Due to their specific, characteristic structure with regions of free spaces (cavities), it is possible to use them as carriers for anti-cancer drugs, gene transfection, or non-proton imaging. Depending on the generation of dendrimers, their size increases. The size of the dendrimers will be related to the packing density of the molecules on the surface of the dendrimer. Tomalia et al. described a linear increase in diameter and an exponential increase in the number of surface groups for PAMAM dendrimers from the core to the seventh generation (G2-G7), with diameters of G2 = 2.0 nm, G3 = 3.1 nm, G4 = 4.0 nm, G5 = 5.3 nm, G6 = 6.7 nm, and G7 = 8.0 nm [21]. The synthesis of dendrimers requires the implementation of chromatography and mass spectrometry for characterization. Basic analytical methods also include NMR, optical activity (circular dichroism), purity (UV spectroscopy and Electrophoriesis), surface structure (Electron paramagnetic resonance), size and shape measurements (TEM, X-ray), and X-ray crystallization (XRD) ( Figure 5). nm, G3 = 3.1 nm, G4 = 4.0 nm, G5 = 5.3 nm, G6 = 6.7 nm, and G7 = 8.0 nm [21]. The synthesis of dendrimers requires the implementation of chromatography and mass spectrometry for characterization. Basic analytical methods also include NMR, optical activity (circular dichroism), purity (UV spectroscopy and Electrophoriesis), surface structure (Electron paramagnetic resonance), size and shape measurements (TEM, X-ray), and X-ray crystallization (XRD) ( Figure 5).

The Use of Dendrimers in Drug Delivery
The properties of dendrimers are used as carriers of pharmacological compounds. When the drug is confined in the cavities of the dendrimer, encapsulation is performed so that a sustained release conjugate can be obtained. Increasingly, dendrimers are used as carriers for pharmaceutical substances [22], which can be placed in two ways-either on the surface of the dendrimer, or inside it by encapsulation, i.e., enclosing the molecules in the cavities of the dendrimers. In the case of the structure of the three-dimensional dendrimers, it is possible to use a wide variety of drugs forming biologically active drug conjugates. Due to the penetration of dendrimers through the cell membrane, they are beginning to be used as non-viral gene transporters. Dendrimers can be used to create new generation vaccines. Currently, nanotechnology and combination therapy are the main promising areas in the fight against cancer. The implementation of dendrimers can contribute to the improvement of the anti-cancer therapies [23,24]. In the latest work by Kaczorowska et al., the modification of PAMAM G3 by attaching biotin via an amide bond and glucoheptoamidated by adding α-D-glucoheptone-1,4-lactone is reported. A series of conjugates with a variable number of biotin residues was obtained, while reactive oxygen species were detected in Caco-2 cells incubated with capsules after 30 s of irradiation with a 655 nm laser beam [25]. On the other hand, the group of Salimi et al. presented the use of dendrimer functionalized with iron oxide nanoparticles (G4 @IONPs) in the therapy of

The Use of Dendrimers in Drug Delivery
The properties of dendrimers are used as carriers of pharmacological compounds. When the drug is confined in the cavities of the dendrimer, encapsulation is performed so that a sustained release conjugate can be obtained. Increasingly, dendrimers are used as carriers for pharmaceutical substances [22], which can be placed in two ways-either on the surface of the dendrimer, or inside it by encapsulation, i.e., enclosing the molecules in the cavities of the dendrimers. In the case of the structure of the three-dimensional dendrimers, it is possible to use a wide variety of drugs forming biologically active drug conjugates. Due to the penetration of dendrimers through the cell membrane, they are beginning to be used as non-viral gene transporters. Dendrimers can be used to create new generation vaccines. Currently, nanotechnology and combination therapy are the main promising areas in the fight against cancer. The implementation of dendrimers can contribute to the improvement of the anti-cancer therapies [23,24]. In the latest work by Kaczorowska et al., the modification of PAMAM G3 by attaching biotin via an amide bond and glucoheptoamidated by adding α-D-glucoheptone-1,4-lactone is reported. A series of conjugates with a variable number of biotin residues was obtained, while reactive oxygen species were detected in Caco-2 cells incubated with capsules after 30 s of irradiation with a 655 nm laser beam [25]. On the other hand, the group of Salimi et al. presented the use of dendrimer functionalized with iron oxide nanoparticles (G4 @IONPs) in the therapy of magnetic hyperthermia of breast cancer in Bagg albino C (BALB/c) mice. It has been shown to reduce the viability of cancer cells and inhibit tumor growth, which indicates the possibility of using dendrimers as nanoparticles for therapeutic applications [26]. In the literature, we can also find many reports on the use of dendrimers in the treatment of breast cancer [27]. Kulhari et al.
presented PAMAM dendrimers conjugated with Trastuzumab to improve the delivery of docetaxel to breast cancer cells overexpressing the HER2+ receptor. Conjugated dendrimers showed higher cellular internalization and the induction of apoptosis against MDA-MB-453 cells [28]. On the other hand, Aleanizy et al. described the use of nanocapsules containing G4 PAMAM polyamidoamine dendrimer with neratinib and attached to trastuzumab, which was characterized by increased cellular uptake in HER2+ breast cancer cells [29]. In order to improve the efficiency of HER2+ tumor detection, new nanoimaging agents were developed using PAMAM G5 dendrimers, gold (AuNP), and gadolinium (Gd) nanoparticles conjugated to a humanized anti-HER-2 antibody (Herceptin). The obtained results show that it is possible to use dendrimers as nanodiagnostics or nanotherapeutic agents in the treatment of HER2+ tumors [30]. In addition, G5 PAMAM dendrimers hydrophobically modified by lipid-like myristic acid (My) tail grafting enhance delivery of tamoxifen to breast cancer cells in in vitro studies [31]. Studies also show a glucose-modified PAMAM dendrimer used to deliver doxorubicin to breast cancer cells, which increases the cytotoxic activity of the conjugate in MCF-7 breast cancer cells [32]. A herceptin-targeted PAMAM G4 dendrimer functionalized with diglycolamic acid (DGA) was also used as a drug carrier for cisplatin in human ovarian cancer HER-2+ and HER-2− [33]. Reports also show that poly (ε-caprolactone) (PCL)-poly (ethylene glycol) (PEG) (PEG-PCL NP) nanoparticles, combined with Trastuzumab, can be used for the targeted therapy of gastric cancer cells with HER2+ receptor overexpression [34]. Moreover, other studies show the possibility of using dendrimers as a carrier coupled with a photosensitizer for photodynamic therapy as a targeted delivery of photosensitizers to neoplastic tissue [35].

Dendrimer Conjugates with Pharmaceutically Active Substances In Vitro
Dendrimers have unique properties; their unique structure allows them to be used as carriers for pharmaceutical substances. Numerous in vitro studies on pharmaceutical substances show their great potential. The use of dendrimers for drug delivery can be achieved in two ways. One is drug-polymer conjugation. In the case of hydrophobic drugs, they can be placed inside the hydrophobic interior of the dendrimer. Then, they have very good solubility in water. The second way is by covalent coupling on the surface of the dendrimer. It should be noted that amine terminated dendrimers may cause toxicity by binding to negatively charged cell membranes. Targeted drug delivery in anti-cancer therapy can bring many benefits, as the drug goes directly to the neoplastic lesion. Table 1 provides an overview of the various dendrimer conjugates with pharmaceutically active substances.

Application of Dendrimers in Oncological Therapy
Dendrimers are characterized by unique structural properties and a specific shape. Dendrimers can be successfully used in cancer therapies as drug carriers due to covalent conjugation or by physical encapsulation [48]. In addition, dendrimers are increasingly used in oncological therapies. They accumulate directly in the tumor, which ensures the delivery of the drug in the prescribed dose. In the case of traditional chemotherapy, the problem turns out to be low efficiency in the distribution of drugs to the neoplastic tissue [49]. Additionally, it enables an increase in the effectiveness of the treatment and also helps to reduce cytotoxicity to normal cells. The implementation of the use of dendrimers in oncological therapies enables the targeted delivery of drugs in an effective dose and the monitoring of the effectiveness of anticancer therapy. An increasingly frequent problem is the inability to verify the effectiveness of the therapies used, or the fact that the ability to check the effectiveness of the therapies is largely limited. Another problem is the drug resistance and cytotoxicity to normal cells, which is related to the lack of specificity for neoplastic cells. The use of dendrimers allows for the neutralization of the problems encountered during the application of anti-cancer therapies. Currently, numerous studies are being carried out on their use as carriers of therapeutic molecules. The multifunctional core and the branching units are terminated with free functional groups. Depending on the chemical structure of the core, its branches and functional groups and their reactivity, size, and shape vary [50]. Due to the specificity of the construction, various types of modifications are possible. For this reason, it is possible to use them in targeted therapies, because, by attaching ligands, they bind directly to the receptors in neoplastic tumors [51]. This allows the drug to penetrate inside the neoplastic cells, avoiding the increasing phenomenon of resistance to therapeutic agents [52]. The use of dendrimers as drug carriers and their use in targeted therapy allows for better effectiveness of the applied therapies and many side effects. [53].
PAMAM dendrimers can increase the solubility of hydrophobic drugs and can be used in targeted therapy [54][55][56]. Additionally, polyphenylene dendrimers directly targeting the tumor and pH responsive release in tumors are a promising nanocarrier for anti-cancer drugs due to their improved drug encapsulation properties [57]. A polypropylene dendrimer is used as a carrier for pharmaceutical substances such as anti-cancer drugs, as well as genes [58]. The development of carriers that will influence the shedding of oncogenes and cancer-related genes is extremely important in the treatment of cancer. The dendrimer architecture and the influence of the core have a significant influence on the effectiveness and biocompatibility of the therapies used [59]. Dendrimers are also used to deliver siRNA and DNA. However, designing this type of particles in an efficient and biocompatible manner to deliver siRNA or DNA is a very big challenge for researchers. Due to their properties, dendrimers can be carriers of bioactive molecules. The modification of dendrimers allowed for the development of a gene delivery vehicle by modifying the compound containing guanidyl groups and phenyl groups on the surface of the cationic dendrimer [60]. The potential of using poly (propylene-imine) dendrimers (PPI) as a vehicle for the docetaxel (DTX) targeting of MCF-7 breast cancer was assessed by Thakur [61]. The synthesis of PPI dendrimers with the drug gemcitabine has also been used in the targeted therapy of A549 lung cancer cells [62]. PPI dendrimers have been used to increase paclitaxel (PTX) delivery to the brain [63]. Other studies have used a transferrin-containing dendrimer for the targeted therapy of the brain [64]. Fourth generation PPI dendrimers partially modified with maltose were used as carriers for the CCRF-1301 lymphoid leukemia cell lines and the HL-60 myeloid cell line [65]. Additionally, Franiak-Pietryga presented in vivo studies on the use of maltotriose-modified PPI dendrimers as a potential new platform in the treatment of chronic lymphocytic leukemia [66].

Use of Dendrimers as Contrast Agents
Contrast agents used in magnetic resonance imaging (MRI) allow for the obtention of more sensitive images. The two common types of images are hyperintense images (T 1 weighted images) and hypointense images (T 2 weighted images). On the other hand, the use of contrast agents allows for the shortening of the longitudinal relaxation time, which is used in clinical diagnostics and in scientific research ( Figure 6). The most commonly used contrast agents in clinical practice contain paramagnetic gadolinium compounds (Gd 3+ ). However, due to the occurring side effects, research is underway on a new generation of Gd-MRI contrast agents, which could be administered in lower doses while ensuring high sensitivity. Therefore, in scientific publications, we can follow more and more reports on Gd-functionalized dendrimers. Gadolinium-based contrast associated with dendrimers increases the number of Gd 3+ in the molecule, which makes them more spherical and in turn increases their sensitivity [67]. Moreover, attention should be paid to the accumulation of contrast agents in the neoplastic tissue. In the case of multiparticulate contrast agents, they should tend to target neoplastic tissues much more than healthy tissues, due to the undeveloped lymphatic vessels in the tumor that would eliminate these particles. In studies, we can find reports on the use of different types of dendrimers as MRI contrasts [68]. They are increasingly used as contrast agents for MRI. Dendrimers are woody macromolecules with numerous chemical groups with which Gd chelates can be combined. Moreover, we can control their size and nanoscopic dimension. The most popular are metal salts showing paramagnetic properties, such as (Gd (III)-DOTA) and its derivatives. Studies show numerous uses of such agents in combination with polysaccharides, polyamino acids, or proteins used for imaging animal models, which could be used in clinical imaging at a later stage. A new MRI contrast mechanism, i.e., chemical saturation transfer by chemical exchange (CEST), is also presented. Lesniak et al. used nanocarriers based on G5 PAMAM dendrimers with covalently bonded salicylic acid to the surface of the dendrimer. It has been shown that the conjugate can be used for imaging gliomas in mice, as a CEST contrast of 9.4 ppm was obtained [69]. Additionally, the group of Snoussi et al. presented the sensitive CEST agents based on the exchange of nucleic acid iminoprotons: the detection of poly (rU) and the dendrimer-poly (rU) model [70]. On the other hand, the group of Shen et al. has developed a composite of polylysine dendrimer and Fe 3 O 4 coupled to a heterogeneous dimer with a peptide acting as a probe for the early diagnosis and treatment of hepatocellular carcinoma in order to reduce the adverse effects caused by doxorubicin (DOX). MRI studies have shown that MNP-DGL-RGD-GX1-DOX can be used for the early diagnosis and therapy of hepatocellular carcinoma [71]. By contrast, Zhu et al. presented the Mn (II) chelating dendrimer as an MRI contrast agent containing six tyrosine derivatives of the [Mn (EDTA) (H 2 O)]2− group linked to the cyclotriphosphazene core. It showed great relaxation, which confirms that Mn (II) is a potential alternative to Gd-based measures [72]. saturation transfer by chemical exchange (CEST), is also presented. Lesniak et al. used nanocarriers based on G5 PAMAM dendrimers with covalently bonded salicylic acid to the surface of the dendrimer. It has been shown that the conjugate can be used for imaging gliomas in mice, as a CEST contrast of 9.4 ppm was obtained [69]. Additionally, the group of Snoussi et al. presented the sensitive CEST agents based on the exchange of nucleic acid iminoprotons: the detection of poly (rU) and the dendrimer-poly (rU) model [70]. On the other hand, the group of Shen et al. has developed a composite of polylysine dendrimer and Fe3O4 coupled to a heterogeneous dimer with a peptide acting as a probe for the early diagnosis and treatment of hepatocellular carcinoma in order to reduce the adverse effects caused by doxorubicin (DOX). MRI studies have shown that MNP-DGL-RGD-GX1-DOX can be used for the early diagnosis and therapy of hepatocellular carcinoma [71]. By contrast, Zhu et al. presented the Mn (II) chelating dendrimer as an MRI contrast agent containing six tyrosine derivatives of the [Mn (EDTA) (H2O)] 2− group linked to the cyclotriphosphazene core. It showed great relaxation, which confirms that Mn (II) is a potential alternative to Gd-based measures [72].

In Vitro Study-Use of Dendrimers As Contrast Agents
The use of dendrimers allows for the preparation of macromolecular contrast agents used for diagnostic tests. Contrast agents based on dendrimers significantly improve contrast properties and improve pharmacokinetic properties. The use of dendrimers as contrast media carriers has gained popularity in recent years. They are used, inter alia, for the diagnosis of nuclear magnetic resonance. Table 2 below provides an overview of the different types of dendrimers used as contrast agents in in vitro testing.

In Vitro Study-Use of Dendrimers As Contrast Agents
The use of dendrimers allows for the preparation of macromolecular contrast agents used for diagnostic tests. Contrast agents based on dendrimers significantly improve contrast properties and improve pharmacokinetic properties. The use of dendrimers as contrast media carriers has gained popularity in recent years. They are used, inter alia, for the diagnosis of nuclear magnetic resonance. Table 2 below provides an overview of the different types of dendrimers used as contrast agents in in vitro testing.   The dendrimer is characterized by a strong 19   MRI contrast agents; these conjugates have relaxivities up to 374 mM −1 s −1 per dendrimer, high bioavailability, and low in vitro toxicity. The peptide-targeted nanoglobular contrast agents showed greater contrast enhancement than the corresponding nontargeted agents in tumor at a dose of 0.03 mmol Gd/kg in female athymic mice bearing MDA-MB-231 human breast carcinoma xenografts. [98]

In Vivo Study-Use of Dendrimers As Contrast Agents
Due to the prevalence of neoplastic diseases, it is important to develop in vivo research in the field of MR imaging. MRI diagnostics have developed significantly in recent decades, but due to civilization changes and the relatively late detection of neoplastic changes, there is a need for further development in this field. The use of nanoparticles in clinical diagnostics would enable the early detection of tumors and thus the implementation of treatment at an earlier stage. They are increasingly used as contrast agents for MRI diagnostics. Nanoparticles are characterized by a small particle size and the ability to accumulate in the tumor area, thus improving the efficiency of imaging. On the other hand, multifunctional nanoparticles can be used for simultaneous diagnostics and therapy. The use of nanoparticles allows for better image contrast, which enables better visualization of pathologically changed structures. Gadolinium-based contrast agents are the most commonly used in clinical diagnostics. The combination of Gd molecules with dendrimers allows for the obtention of images of greater sensitivity due to increased accumulation in the tumor area. For example, in vivo MR imaging of atherosclerosis manganese dendrimer G8 was used, which was conjugated with MnDTPA (ion 758 Mn) and the MDA2 antibody targeting malondialdehyde (MDA) -lysine epitopes to significantly enhance atherosclerotic lesions [99]. In their research, Chen et al. presented a G5 PAMAM dendrimer conjugate encapsulated with gold nanoparticles chelated with gadolinium and anti-human HER2 antibody, which increased MRI signal intensity by approximately 20% in the mouse HER2+ tumor model [100]. Additionally, Gonawala et al. used the PAMAM G5 in an animal model of glioblastoma [101]. The research also presents a fourth-generation biodegradable dendritic contrast agent (DCA) that can be successfully used as a contrast agent for imaging liver metastases by MRI, which has been hampered by the accumulation of contrast agents in hepatocytes and Kupffer cells. DCA, on the other hand, reduces the background signal in the liver, thereby enhancing the MRI signal of tumors [102]. Other studies presented a G3 dendrimer synthesized with folic acid. In vivo studies confirmed that the use of such a modification enables the obtention of a clear SPECT image, which may contribute to the improvement of cancer diagnostics [103]. Reports also show the popular Magnevist counter agent attached to the G1 spherical dendrimer, which resulted in increased tissue relaxation and improved MR image contrast [104]. Table 3 below provides an overview of the different types of dendrimers used as contrast agents in in vivo studies. Amphiphilic Janus-dendrimers (dendrimersomes); 3,5-C12-EG-(OH)4 dendrimer As a contrast agent, T 1 weighted enhancement in the tumor area [108]  The uptake of the drug into the liver hepatocellular cell line and the drug cytotoxicity were evaluated. It also increases the relaxivity of the tissue and enhances the MR images contrast. Were used as templates to synthesize gold nanoparticles (AuNPs). With the coexistence of the two radiodense imaging elements of AuNPs and Gd(III) within one NP system, the formed Gd-Au DENPs display both r 1 relaxivity for the MR imaging mode and the X-ray attenuation property for CT imaging mode, which enables CT/MR dual mode imaging of the heart, liver, kidneys, and bladder of rats or mice.
[117]  Surface-PEGylated Gd-PAMAM dendrimers showed decreased plasma clearance and prolonged retention in the blood pool.
Shorter PEG, higher generation conjugates led to higher relaxivity. The macrocyclic-based agent is the more suitable agent for in vivo use for these reasons combined with kinetics. Inertness is associated with the Gd(III) DOTA complex stability properties. [124]

Summary
The development of nanotechnology is an innovative approach to replace the classic regimens of anti-cancer therapies and classic diagnostics. The modification of drugs and contrast agents that already exist, as well as the search for new ones, is the future and a challenge of modern medicine. The use of dendrimer-coated magnetic nanoparticles allows for the development of a drug delivery system and targeted therapy that improves the effectiveness of therapy and reduces the risk of toxicity by using a lower drug dose. In addition, implementing treatment regimens using pH-sensitive pharmaceuticals would help to reduce drug resistance during anti-cancer therapy. Therefore, it is essential to characterize dendrimers and pay attention to analytical techniques in the process of their manufacture. Depending on the dendrimer group and the surface group, it is possible to create conjugates of interest. The use of nanoparticles allows for the minimization of side effects and the adjustment of the appropriate dose of the drug, which will bring the desired therapeutic effect. Due to their properties and the ability to adjust the size of molecules, PAMAM dendrimers, used as drug carriers, can be successfully used in anti-cancer therapy. It is possible to attach specific ligands to the surface of the dendrimer, which will be recognized by receptors overexpressing cancer cells. In addition, research into new MRI contrast agents is proving to be important. The currently used contrast agents cause a number of side effects due to the high dose administered. The research focuses on the development of contrast agents based on functionalized Gd dendrimers that could be administered in clinical trials at a lower dose while maintaining the same sensitivity and diagnostics in clinical trials as traditional contrast agents. This review presents advancements in dendrimerbased research in various fields. It should be emphasized that the spectrum of the use of dendrimers is very wide. The applications of dendrimers include, but are not limited to, chemotherapy, radiation therapy, photothermia, and photodynamic therapy. In addition, they are also used in gene therapies because they allow for the condensation of nucleic acid materials. Due to the unknown metabolism of the therapies used, there is a need for further research into the use of dendrimers, despite the fact that they are characterized by higher biocompatibility and the improved effectiveness of the therapies used. Despite numerous studies, there is a need for continued research and an attempt to transfer them to in vivo research. There is a need to improve the effectiveness of the applied therapies and to understand metabolic mechanisms. In summary, the use of dendrimers in oncology is a modern approach that can overcome the limitations of standard diagnostics and therapy by improving the time required to detect neoplastic lesions and monitoring the effectiveness of the therapy. The use of dendrimers for the synthesis of new drugs or the modifications of existing drugs is a challenge of modern pharmacology. In addition, the development of effective drug delivery methods to cancer cells would allow for better therapy outcomes. The development of targeted therapies would make it possible to improve the effectiveness of treatment and minimize the negative side effects of the used therapies. It will also make it possible to bypass the disadvantages of classical diagnostic and therapeutic methods and improve the effectiveness of the used therapies.

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

Conflicts of Interest:
The authors declare no conflict of interest.
Sample Availability: Samples of the compounds are available from the authors.