Membrane-Targeting Perylenylethynylphenols Inactivate Medically Important Coronaviruses via the Singlet Oxygen Photogeneration Mechanism

Perylenylethynyl derivatives have been recognized as broad-spectrum antivirals that target the lipid envelope of enveloped viruses. In this study, we present novel perylenylethynylphenols that exhibit nanomolar or submicromolar antiviral activity against Severe Acute Respiratory Syndrome Coronavirus-2 (SARS-CoV-2) and feline infectious peritonitis virus (FIPV) in vitro. Perylenylethynylphenols incorporate into viral and cellular membranes and block the entry of the virus into the host cell. Furthermore, these compounds demonstrate an ability to generate singlet oxygen when exposed to visible light. The rate of singlet oxygen production is positively correlated with antiviral activity, confirming that the inhibition of fusion is primarily due to singlet-oxygen-induced damage to the viral envelope. The unique combination of a shape that affords affinity to the lipid bilayer and the capacity to generate singlet oxygen makes perylenylethynylphenols highly effective scaffolds against enveloped viruses. The anticoronaviral activity of perylenylethynylphenols is strictly light-dependent and disappears in the absence of daylight (under red light). Moreover, these compounds exhibit negligible cytotoxicity, highlighting their significant potential for further exploration of the precise antiviral mechanism and the broader scope and limitations of this compound class.


Introduction
The Coronaviridae family includes numerous medically significant viral pathogens, as evidenced by the recent outbreak of SARS-CoV-2 (Severe Acute Respiratory Syndrome

Introduction
The Coronaviridae family includes numerous medically significant viral pathogens, as evidenced by the recent outbreak of SARS-CoV-2 (Severe Acute Respiratory Syndrome Coronavirus-2), the causative agent of the COVID-19 pandemic, which has resulted in over 6 million deaths reported to date.In addition, Feline Coronavirus (FCoV), also called feline infectious peritonitis virus (FIPV), which causes lethal infections in domestic cats and wild felines, is currently an intensively researched veterinary pathogen.The treatment of diseases caused by members of the Coronaviridae family continues to be a challenge, making the development of new effective drugs against acute coronavirus infections an important research priority [1][2][3][4].
Perylene [46][47][48] and its derivatives [19,[49][50][51][52][53][54] have been recognized as singlet oxygen photogenerators.Recently, we determined the quantum yields of 1 O2 generation in methanol for several (het)arylethynylperylenes and thienylperylenes, which have shown activity against SARS-CoV-2 [20].Non-nucleoside perylene antivirals are amphipathic compounds that consist of a lipophilic perylene residue and polar functional groups (Figure 1).They are somewhat soluble in aqueous buffers containing a few percent of DMSO, likely forming micelles.The antiviral activity of these compounds is influenced by various factors, impacting not only their capacity to generate singlet oxygen 1 O2, but also their ability to penetrate lipid membranes [20].The ability of perylene antivirals to penetrate the membrane is strongly influenced by the shape and amphipathicity of the molecule: compounds with well-balanced amphipathicity had strong affinity for membranes and high anitiviral activity, whereas compounds with increased polarity or hydrophobicity were less effective or inactive [20].During our investigation of perylene nucleosides, we synthesized the precursor compound, phenol 3a [55].Given its structural resemblance to other perylene antivirals (Figure 1), we decided to evaluate its antiviral activity, which yielded promising results.
Considering the straightforward synthesis process, we proceeded to prepare a small series of similar compounds with modifications in the hydroxyl position, the perylene substitution position, and the inclusion of a heavy atom (bromine) into the molecule (Figure 2).
Molecules 2023, 28, x FOR PEER REVIEW 3 of 19 During our investigation of perylene nucleosides, we synthesized the precursor compound, phenol 3a [55].Given its structural resemblance to other perylene antivirals (Figure 1), we decided to evaluate its antiviral activity, which yielded promising results.Considering the straightforward synthesis process, we proceeded to prepare a small series of similar compounds with modifications in the hydroxyl position, the perylene substitution position, and the inclusion of a heavy atom (bromine) into the molecule (Figure 2).Our objective was to investigate spectral properties and singlet oxygen ( 1 O2) generation ability of the synthesized perylenylethynylphenols and to evaluate their cytotoxicity and antiviral activity against two medically important coronaviruses, SARS-CoV-2 and FIPV.In addition, we elucidated the mechanism of their antiviral activity and demonstrated their specific interaction with viral envelopes and cellular and liposomal membranes.Finally, we have shown that the antiviral activity of perylenylethynylphenols is strictly light-dependent and is completely eliminated in the absence of excitation light or daylight.This work follows our previous larger study of the anti-SARS-CoV activities of perylene-based compounds [20], explains their mechanisms of anti-coronaviral activities in more detail, and shows that other modifications of the perylenylethynyl scaffold can provide compounds with improved biological properties.

Synthesis
Our objective was to develop novel compounds based on perylene with the following features: (i) an extended π-system, where the aryl component is connected to the dye via an ethynyl bridge, (ii) a hydrophilic group and (iii) a "heavy atom".By expanding the πsystem, the lipophilic portion of the photosensitizer increases in length, enabling deeper penetration into the viral envelope and facilitating oxidation by singlet oxygen.The hydrophilic group not only enhances compound solubility, but also influences the dye's insertion into the lipid bilayer.Introducing a bromine atom into compounds 3c and 3f allowed us to examine the impact of a "heavy atom" in the structure of perylenylethynylphenols on the photophysical and biological properties.
A series of novel perylene-based compounds was synthesized using a Sonogashira reaction (Scheme 1).The starting compounds included 2-and 3-ethynylperylenes 1a,b and various iodoarenes 2a-c.The reaction was performed under an inert atmosphere and heating (80 °C for 12 h).Compound 3a was obtained using a previously reported method [55].To remove residual DMF and catalyst, the reaction mixture was extracted with ethyl acetate, water and EDTA.The obtained compounds were purified using column chromatography.In total, six new compounds were obtained with yields ranging from 49% to 77%, giving the desired compounds as colored crystals.Our objective was to investigate spectral properties and singlet oxygen ( 1 O 2 ) generation ability of the synthesized perylenylethynylphenols and to evaluate their cytotoxicity and antiviral activity against two medically important coronaviruses, SARS-CoV-2 and FIPV.In addition, we elucidated the mechanism of their antiviral activity and demonstrated their specific interaction with viral envelopes and cellular and liposomal membranes.Finally, we have shown that the antiviral activity of perylenylethynylphenols is strictly light-dependent and is completely eliminated in the absence of excitation light or daylight.This work follows our previous larger study of the anti-SARS-CoV activities of perylenebased compounds [20], explains their mechanisms of anti-coronaviral activities in more detail, and shows that other modifications of the perylenylethynyl scaffold can provide compounds with improved biological properties.

Synthesis
Our objective was to develop novel compounds based on perylene with the following features: (i) an extended π-system, where the aryl component is connected to the dye via an ethynyl bridge, (ii) a hydrophilic group and (iii) a "heavy atom".By expanding the π-system, the lipophilic portion of the photosensitizer increases in length, enabling deeper penetration into the viral envelope and facilitating oxidation by singlet oxygen.The hydrophilic group not only enhances compound solubility, but also influences the dye's insertion into the lipid bilayer.Introducing a bromine atom into compounds 3c and 3f allowed us to examine the impact of a "heavy atom" in the structure of perylenylethynylphenols on the photophysical and biological properties.
A series of novel perylene-based compounds was synthesized using a Sonogashira reaction (Scheme 1).The starting compounds included 2-and 3-ethynylperylenes 1a,b and various iodoarenes 2a-c.The reaction was performed under an inert atmosphere and heating (80 • C for 12 h).Compound 3a was obtained using a previously reported method [55].To remove residual DMF and catalyst, the reaction mixture was extracted with ethyl acetate, water and EDTA.The obtained compounds were purified using column chromatography.In total, six new compounds were obtained with yields ranging from 49% to 77%, giving the desired compounds as colored crystals.Scheme 1. Synthesis of perylenylethynylphenols.

Spectral Properties and 1 O2 Generation
The obtained perylene derivatives 3a-c exhibited absorption maxima in the 463-466 nm range, while derivatives 3d-f showed absorption at 438 nm (Figure 3).It is worth noting that perylene compounds substituted at the third position exhibit a bathochromic shift compared to perylenes substituted at the second position.Although aryl residues in diarylacetylenes are coplanar in their ground state, the rotation barrier is very low, and a number of conformations is present in solutions [56][57][58][59][60].

Spectral Properties and 1 O 2 Generation
The obtained perylene derivatives 3a-c exhibited absorption maxima in the 463-466 nm range, while derivatives 3d-f showed absorption at 438 nm (Figure 3).It is worth noting that perylene compounds substituted at the third position exhibit a bathochromic shift compared to perylenes substituted at the second position.Although aryl residues in diarylacetylenes are coplanar in their ground state, the rotation barrier is very low, and a number of conformations is present in solutions [56][57][58][59][60].

Spectral Properties and 1 O2 Generation
The obtained perylene derivatives 3a-c exhibited absorption maxima in the 463-466 nm range, while derivatives 3d-f showed absorption at 438 nm (Figure 3).It is worth noting that perylene compounds substituted at the third position exhibit a bathochromic shift compared to perylenes substituted at the second position.Although aryl residues in diarylacetylenes are coplanar in their ground state, the rotation barrier is very low, and a number of conformations is present in solutions [56][57][58][59][60].  Compounds 3a-c exhibited fluorescence maxima in the 472-476 nm range, while compounds 3d-f showed fluorescence in the 440-442 nm range.A comparison of the absorption and fluorescence maxima between 3-ethynylperylene derivatives 3a-c and 2ethynylperylene derivatives 3d-f revealed a red-shift of approximately 25-30 nm for the former (Table 1).The Stokes shift, representing the difference between the absorption and fluorescence wavelengths, was significantly lower for the 2-ethynylperylene compounds (2-4 nm) compared to the 3-ethynylperylene compounds (9-10 nm).Notably, due to the pronounced absorption peaks in the 430-470 nm range, perylene derivative molecules can undergo a transition from the excited singlet state to the triplet state, allowing for interaction with oxygen molecules to form singlet oxygen.

Biological Studies
We first investigated the cytotoxicity and antiviral activity of perylenylethynylphenols 3a-f against SARS-CoV-2 in Vero (African Green Monkey, adult kidney, epithelial) cells (Figure 5A-D).These initial experiments were performed under normal lighting (i.e., sample preparation in daylight and cultivation in the dark) (Figure 5A,B).Perylenylethynylphenols 3a-f showed no cytotoxicity to Vero cells up to 10 µM (CC50 > 50 µM) when incubated with cells at 37 °C for 48 h (Figure 5C, Table 1).Interestingly, all compounds, when at the highest concentration tested (10 µM), caused a slight increase in the intensity of cellular metabolism, resulting in cell viability values above 100% (Figure 5C).However, no morphological changes were observed after culturing Vero cells with the tested compounds (up to 10 µM).  a Determined from three independent experiments.b Expressed as a 50% reduction in viral titer and calculated from the inflexion points of sigmoidal dose-response curves using GraphPad Prism 7.04 (GraphPad Software, Inc., La Jolla, CA, USA).

Biological Studies
We first investigated the cytotoxicity and antiviral activity of perylenylethynylphenols 3a-f against SARS-CoV-2 in Vero (African Green Monkey, adult kidney, epithelial) cells (Figure 5A-D).These initial experiments were performed under normal lighting (i.e., sample preparation in daylight and cultivation in the dark) (Figure 5A,B).Perylenylethynylphenols 3a-f showed no cytotoxicity to Vero cells up to 10 µM (CC50 > 50 µM) when incubated with cells at 37 °C for 48 h (Figure 5C, Table 1).Interestingly, all compounds, when at the highest concentration tested (10 µM), caused a slight increase in the intensity of cellular metabolism, resulting in cell viability values above 100% (Figure 5C).However, no morphological changes were observed after culturing Vero cells with the tested compounds (up to 10 µM).  a Determined from three independent experiments.b Expressed as a 50% reduction in viral titer and calculated from the inflexion points of sigmoidal dose-response curves using GraphPad Prism 7.04 (GraphPad Software, Inc., La Jolla, CA, USA).

Biological Studies
We first investigated the cytotoxicity and antiviral activity of perylenylethynylphenols 3a-f against SARS-CoV-2 in Vero (African Green Monkey, adult kidney, epithelial) cells (Figure 5A-D).These initial experiments were performed under normal lighting (i.e., sample preparation in daylight and cultivation in the dark) (Figure 5A,B).Perylenylethynylphenols 3a-f showed no cytotoxicity to Vero cells up to 10 µM (CC50 > 50 µM) when incubated with cells at 37 °C for 48 h (Figure 5C, Table 1).Interestingly, all compounds, when at the highest concentration tested (10 µM), caused a slight increase in the intensity of cellular metabolism, resulting in cell viability values above 100% (Figure 5C).However, no morphological changes were observed after culturing Vero cells with the tested compounds (up to 10 µM).  a Determined from three independent experiments.b Expressed as a 50% reduction in viral titer and calculated from the inflexion points of sigmoidal dose-response curves using GraphPad Prism 7.04 (GraphPad Software, Inc., La Jolla, CA, USA).

Biological Studies
We first investigated the cytotoxicity and antiviral activity of perylenylethynylphenols 3a-f against SARS-CoV-2 in Vero (African Green Monkey, adult kidney, epithelial) cells (Figure 5A-D).These initial experiments were performed under normal lighting (i.e., sample preparation in daylight and cultivation in the dark) (Figure 5A,B).Perylenylethynylphenols 3a-f showed no cytotoxicity to Vero cells up to 10 µM (CC50 > 50 µM) when incubated with cells at 37 °C for 48 h (Figure 5C, Table 1).Interestingly, all compounds, when at the highest concentration tested (10 µM), caused a slight increase in the intensity of cellular metabolism, resulting in cell viability values above 100% (Figure 5C).However, no morphological changes were observed after culturing Vero cells with the tested compounds (up to 10 µM). a Determined from three independent experiments.b Expressed as a 50% reduction in viral titer and calculated from the inflexion points of sigmoidal dose-response curves using GraphPad Prism 7.04 (GraphPad Software, Inc., La Jolla, CA, USA).

Biological Studies
We first investigated the cytotoxicity and antiviral activity of perylenylethynylphenols 3a-f against SARS-CoV-2 in Vero (African Green Monkey, adult kidney, epithelial) cells (Figure 5A-D).These initial experiments were performed under normal lighting (i.e., sample preparation in daylight and cultivation in the dark) (Figure 5A,B).Perylenylethynylphenols 3a-f showed no cytotoxicity to Vero cells up to 10 µM (CC50 > 50 µM) when incubated with cells at 37 °C for 48 h (Figure 5C, Table 1).Interestingly, all compounds, when at the highest concentration tested (10 µM), caused a slight increase in the intensity of cellular metabolism, resulting in cell viability values above 100% (Figure 5C).However, no morphological changes were observed after culturing Vero cells with the tested compounds (up to 10 µM). a Determined from three independent experiments.b Expressed as a 50% reduction in viral titer and calculated from the inflexion points of sigmoidal dose-response curves using GraphPad Prism 7.04 (GraphPad Software, Inc., La Jolla, CA, USA).

Biological Studies
We first investigated the cytotoxicity and antiviral activity of perylenylethynylphenols 3a-f against SARS-CoV-2 in Vero (African Green Monkey, adult kidney, epithelial) cells (Figure 5A-D).These initial experiments were performed under normal lighting (i.e., sample preparation in daylight and cultivation in the dark) (Figure 5A,B).Perylenylethynylphenols 3a-f showed no cytotoxicity to Vero cells up to 10 µM (CC50 > 50 µM) when incubated with cells at 37 °C for 48 h (Figure 5C, Table 1).Interestingly, all compounds, when at the highest concentration tested (10 µM), caused a slight increase in the intensity of cellular metabolism, resulting in cell viability values above 100% (Figure 5C).However, no morphological changes were observed after culturing Vero cells with the tested compounds (up to 10 µM). a Determined from three independent experiments.b Expressed as a 50% reduction in viral titer and calculated from the inflexion points of sigmoidal dose-response curves using GraphPad Prism 7.04 (GraphPad Software, Inc., La Jolla, CA, USA).
To determine the quantum yield of singlet oxygen generation, the absorption spectra of the photosensitizers and the SOSG indicator were measured (Figure 4).The rate of singlet oxygen generation was assessed by monitoring the fluorescence increase in SOSG (Figure 4, inset) and calculating the slope of the initial linear segment.The bleaching rate of the chemical trap under blue light irradiation in the absence of a photosensitizer was also considered.
glet oxygen generation was assessed by monitoring the fluorescence increase in SOSG (Figure 4, inset) and calculating the slope of the initial linear segment.The bleaching rate of the chemical trap under blue light irradiation in the absence of a photosensitizer was also considered.Based on previous research on perylene antivirals [18][19][20], it is known that the photosensitizer generates singlet oxygen within the lipid bilayer of the virus envelope, resulting in its destruction and viral inactivation.Therefore, we conducted measurements to determine the quantum yield of singlet oxygen generation for compounds 3a-f (Table 1).Based on previous research on perylene antivirals [18][19][20], it is known that the photosensitizer generates singlet oxygen within the lipid bilayer of the virus envelope, resulting in its destruction and viral inactivation.Therefore, we conducted measurements to determine the quantum yield of singlet oxygen generation for compounds 3a-f (Table 1).

Biological Studies
We first investigated the cytotoxicity and antiviral activity of perylenylethynylphenols 3a-f against SARS-CoV-2 in Vero (African Green Monkey, adult kidney, epithelial) cells (Figure 5A-D).These initial experiments were performed under normal lighting (i.e., sample preparation in daylight and cultivation in the dark) (Figure 5A,B).Perylenylethynylphenols 3a-f showed no cytotoxicity to Vero cells up to 10 µM (CC 50 > 50 µM) when incubated with cells at 37 • C for 48 h (Figure 5C, Table 1).Interestingly, all compounds, when at the highest concentration tested (10 µM), caused a slight increase in the intensity of cellular metabolism, resulting in cell viability values above 100% (Figure 5C).However, no morphological changes were observed after culturing Vero cells with the tested compounds (up to 10 µM).
Given previously reported perylene derivatives with potent antiviral activity against TBEV and SARS-CoV-2 [6,7], we conducted further investigations to evaluate the activity of the newly synthesized compounds 3a-f against SARS-CoV-2 in Vero cells.Derivatives of 3-ethynylperylene (3a-c) exhibited considerably higher activity against SARS-CoV-2 than derivatives of 2-ethynylperylene (3d-f) (Table 1, Figure 5D, Supplementary Table S1).This enhanced activity can be attributed to their stronger absorption in the 430-470 nm range and their structure being more favorable for positioning within the lipid bilayer, in close proximity to the unsaturated bonds of fatty acids.
Compound 3b, which possesses a hydroxyl group in the m-position to ethynylperylene and lacks a bromine atom, exhibited the highest activity against SARS-CoV-2.On the other hand, compound 3c displayed the lowest activity among the 3-ethynylperylene derivatives, and 3f ranked among the lowest in the series (Table 1, Figure 5D).These results suggest that the presence of bromine in perylenylethynylphenols either reduces the antiviral activity of the compounds or has an insignificant effect on it.Considering the weak conjugation between the perylene and phenyl moieties of the molecule, it is likely that the bromine atom does not significantly influence the stabilization of the triplet state of the photosensitizer, thereby not affecting the yield of singlet oxygen generation, which directly correlates with antiviral activity.Given previously reported perylene derivatives with potent antiviral activity against TBEV and SARS-CoV-2 [6,7], we conducted further investigations to evaluate the activity of the newly synthesized compounds 3a-f against SARS-CoV-2 in Vero cells.Derivatives of 3-ethynylperylene (3a-c) exhibited considerably higher activity against SARS-CoV-2 than derivatives of 2-ethynylperylene (3d-f) (Table 1, Figure 5D, Supplementary Table S1).This enhanced activity can be attributed to their stronger absorption in the 430-470 nm range and their structure being more favorable for positioning within the lipid bilayer, in close proximity to the unsaturated bonds of fatty acids.
Compound 3b, which possesses a hydroxyl group in the m-position to ethynylperylene and lacks a bromine atom, exhibited the highest activity against SARS-CoV-2.On the other hand, compound 3c displayed the lowest activity among the 3ethynylperylene derivatives, and 3f ranked among the lowest in the series (Table 1, Figure 5D).These results suggest that the presence of bromine in perylenylethynylphenols either reduces the antiviral activity of the compounds or has an insignificant effect on it.Considering the weak conjugation between the perylene and phenyl moieties of the molecule, Compound 3e, among the derivatives of 2-ethynylperylene, showed the highest activity against the virus, while compound 3b demonstrated the highest activity overall.This suggests that m-substituted peryleneylethynylphenols exhibit greater antiviral activity than p-substituted ones (Table 1, Figure 5D).Although the difference in the antiviral properties of perylene photosensitizers cannot be solely attributed to variations in their singlet oxygen generation capacity, a correlation can be observed when comparing the data on singlet oxygen generation with antiviral activity (Table 1).Specifically, structurally similar perylene derivatives with either 2-or 3-substitution tend to exhibit higher activity when they have a higher quantum yield of singlet oxygen generation.This indicates that some form of affinity to the lipid bilayer may also play a significant role as a prerequisite for achieving high antiviral activity [20].
Next, we selected a representative compound, 3a, to further investigate the mechanism of anticoronaviral activity of perylenylethynylphenols. SARS-CoV-2 was pre-incubated with 3a (10 µM) for 120 min (the mixture of compound and virus was prepared in daylight and incubated in the dark), and then the viability of compound-treated virus was estimated using a plaque assay (Figure 6A).Our mechanistic studies revealed that compound 3a (and probably all synthesized perylenylethynylphenols) exhibited a direct (virucidal, virusinactivating) effect on free viral particles and reduced/eliminated the viability of SARS-CoV-2 virions in the initial stages of the viral replication cycle.The decrease in titer after the treatment of SARS-CoV-2 with 3a was strictly dependent on the starting virus titer (10 4 , 10 6 , and 10 7 PFU/mL) and resulted in a decrease in viral titer of more than two orders of magnitude compared with control (Figure 6B).Thus, similar to other perylene-based antiviral agents [20], perylenylethynylphenols intercalate into viral membrane envelopes and act as blockers of the viral entry/fusion process.Blocking of virus-cell fusion was previously demonstrated for similar perylenylethynyl derivatives using a cell-based fusion assay [20].
Apart from the viral envelopes, perylenylethynylphenols also showed a strong affinity for cellular membranes; compound 3a was extensively incorporated into the plasmatic membranes, nuclear envelopes and intracellular membranes (probably membranes of lysozomes or endosomes) of porcine stable kidney cells (PS), a model cell line suitable for efficient viusalisation of compound-cell interactions by confocal microscopy (Figure 6C).The incorporation of 3a into cellular membranes is not surprising; both viral and cellular membranes share the same structural features and exhibit similar biophysical properties.Despite the intense incorporation of the compounds into cell membranes, we observed no signs of cytotoxicity or morphological abnormalities in PS cells treated with the compound (Figure 6C).
The affinity of 3a to lipid membranes was further confirmed using a liposomal (proteinfree) membrane model system (Figure 6D,E).Compound 3a (10 µM) dissolved in PBS showed poor fluorescence capability; however, after the addition of 3a to unilamellar liposomes (EPC/Chol of 70/30 mol%), the fluorescence significantly increased, indicating efficient penetration of 3a into liposomal membranes (Figure 6D).The kinetics of liposome penetration of 3a were measured as the steady-state fluorescence response at 520 nm, which reached maximal intensity of about 4 × 10 5 CPE after the complete incubation period (3500 s) (Figure 6E).Furthermore, we investigated the mechanism of antiviral activity of perylenylethynylphenols using FIPV, another member of the Coronaviridae family, which is an important veterinary pathogen.Under normal lighting (i.e., sample preparation in daylight and cultivation in the dark), compound 3a showed nanomolar anti-FIPV potency (EC 50 of 0.1958 µM, 95% CI of 0.1185-0.3234µM) and no cytotoxicity to Felis catus kidney cortex (CRFK) cells (CC 50 > 10 µM), a cell line commonly used for FIPV cultivation and FIPV-based plaque assays (Figure 5E).
Considering that perylenylethynylphenols are potent 1 O 2 photogenerators, we investigated their coronavirus inactivation activity after the irradiation of compound-pretreated FIPV with blue light (465-480 nm, with an approximate power density of 30 mW/cm 2 ; note: the 465-480 nm wavelength is close to the excitation maxima of perylenylethynylphenols).In this experiment, (i) compound 3a and the virus were mixed in daylight and irradiated with blue light for 10 min (Figure 7D, top panel), or (ii) the compound and virus were mixed in daylight and incubated in the dark for 10 min (Figure 7D, medium panel).Then, both samples (irradiated and non-irradiated) were incubated for 1 h at 37 • C in the dark, and the viability of FIPV was determined by a plaque assay.We observed a significant increase in anti-FIPV activity of 3a after irradiation with blue light (Figure 7E, blue line), as compared with the control (non-irradiated sample, Figure 7E, black line).We speculate that the observed enhancement of antiviral (virus inactivation) activity of 3a is due to increased 1 O 2 photogeneration during sample irradiation.Considering that perylenylethynylphenols are potent 1 O2 photogenerators, we investigated their coronavirus inactivation activity after the irradiation of compound-pretreated FIPV with blue light (465-480 nm, with an approximate power density of 30 mW/cm 2 ; note: the 465-480 nm wavelength is close to the excitation maxima of perylenylethynylphenols).In this experiment, (i) compound 3a and the virus were mixed in daylight and irradiated with blue light for 10 min (Figure 7D, top panel), or (ii) the for 1 h at 37 °C in the dark, and the viability of FIPV was determined by a plaque assay.We observed a significant increase in anti-FIPV activity of 3a after irradiation with blue light (Figure 7E, blue line), as compared with the control (non-irradiated sample, Figure 7E, black line).We speculate that the observed enhancement of antiviral (virus inactivation) activity of 3a is due to increased 1 O2 photogeneration during sample irradiation.Interestingly, compound 3a showed some FIPV-inactivation activity even in the nonirradiated sample (Figure 7E, black line).It is evident that the anti-FIPV activity of the perylenylethynylphenols is inducible by daylight, and even the brief exposure of the compounds to daylight during sample preparation and pipetting of the samples onto microtiter plates is sufficient to activate the photosensitizers and manifest their lightdependent antiviral activity.These results are consistent with the observed antiviral activity of 3a and other perylenylethynylphenols under normal lighting, as described above (Figures 5D,E and 6B).
To completely eliminate the influence of daylight on the anti-FIPV activity of perylenylethynylphenols, we performed a parallel experiment in a dark room.In this experiment, all manipulations, including sample preparation and plaque assays, were performed under red light (624 ± 20 nm) (Figure 7D, bottom panel).As expected, the anti-FIPV activity of 3a (up to 10 µM) completely disappeared (Figure 7E, red line).
Finally, we examined the photocytotoxicity of 3a and other perylenylethynylphenols, to CRFK cells.The compounds (0 to 10 µM) were added to CRFK monolayers and irradiated with blue light (465-480 nm, 30 mW/cm 2 ) for 10 min (Figure 7A, top panel).After another 48-h incubation, cell viability was measured and compared with that of non-irradiated cells (controls, Figure 7A, bottom panel).Interestingly, we observed no increase in the cytotoxicity of the studied compounds in irradiated compound-treated cells (CC 50 > 10 uM) compared with controls.The irradiation led to the increased metabolic activity of compound-treated cells (cell viabilites > 100%), which was particularly true for compounds 3b and 3e.It is likely that metabolically active cells, unlike viruses, are more resistant to the deleterious effects of the compounds by undergoing metabolic restructuring and replacing oxidized membrane lipids, thereby restoring the physiological rheology of cell membranes [16].In our previous study [20], some perylenylethynyl derivatives were highly cytotoxic for Vero cells after irradiation with blue light.It is apparent that the photocytotoxicity of perylene compounds depends not only on the compound structure and its ability to generate 1 O 2 , but also on the cell type.

3-and 2-Ethynylperylenes
1 H and 13 C NMR spectra were referenced to CDCl 3 (7.26ppm for 1 H and 77.16 ppm for 13 C). 1 H NMR coupling constants are reported in hertz (Hz) and refer to apparent multiplicities.UV spectra were recorded on a Varian Cary 100 spectrophotometer.Fluorescence spectra were recorded using a Perkin Elmer LS 55 fluorescence spectrometer.Electrospray ionization high resolution mass spectra (ESI HRMS) were recorded using a Thermo Scientific Orbitrap Exactive mass spectrometer in positive ion mode and processed with mMass 5.5.0 software.Thin-layer liquid chromatography was performed using TLC Silica gel 60 F 254 aluminium sheets (Merck, Rahway, NJ, USA).

Rate of Singlet Oxygen Measurement
The ROS generation rate was estimated using the spectrofluorimetric method, based on the fluorescense changes of Singlet Oxigen Sensor Green (SOSG ® , Lumiprobe, Cockeysville, MD, USA) in methanol solution.Oxidation of SOSG by singlet oxygen results in peroxide formation enhancing SOSG fluorescence.
Spectrophotometric measurements were performed in a Qpod 2e thermostated cuvette holder (Quantum Northwest, Liberty Lake, WA, USA) at 25 • C and with magnetic stirring (500 rpm).Absorption spectra were recorded using a MayaPro spectrophotometer (Ocean Optics, Orlando, FL, USA) and a stabilized white light source with a SLS201L tungsten lamp (Thorlabs, Newton, NJ, USA).The fluorescence of SOSG was measured with a Flame CCD spectrometer (Ocean Optics, Orlando, FL, USA) in StripChart mode (530 nm), excitation of the SOSG fluorescence was carried out with a PLS-510 LED laser (InTop, St. Petersburg, Russia) in CW mode at the wavelength of 510 nm.
To study photosensitized 1 O 2 generation, we used a white MCWHLP1 LED (Thorlabs, USA) with filters to limit the radiation to the 430-450 nm range (5.5 mW/cm 2 ).Illumination was uniform over the entire volume of the cuvette, to prevent artifacts associated with the diffusion of non-reacted components from entering into the illuminated volume of the cuvette.Illumination was performed in pulsed mode, with 1 s of illumination followed by 5 s of dark adaptation, during which the fluorescence spectrum of the photosensitizer-SOSG solution was recorded.

Cytotoxicity Assay
Vero cells were cultured for 24 h in 96-well plates to form a confluent monolayer, and then were treated with the tested compounds at concentrations of 0-10 µM.After 48 h of cultivation in the dark at 37 • C under 5% CO 2 , the cell culture medium was aspirated.The potential cytotoxicity of the tested derivatives was determined based on cell viability using Cell Counting Kit-8 (Dojindo Molecular Technologies, Munich, Germany) according to the manufacturer's instructions (Figure 5A).

Virus Titer Reduction Assay
Virus titer reduction assay was performed as described previously [20].Briefly, Vero cells were seeded in 96-well plates and incubated for 24 h to form a confluent monolayer.The virus in DMEM (MOI of 0.1) was mixed with each compound (0-2 µM) and incubated in the dark at 37 • C for 30 min and then used for infection of the cells.At 48 h post-infection (p.i.), the culture medium was collected and viral titers were determined by plaque assays (expressed as PFU/mL) (Figure 5B) as previously described [67] and used to estimate the 50% effective concentration (EC 50 ) (Table 1).We also calculated EC 50 values from log-transformed virus titers (App.EC 50 ) (Supplementary Table S1) to better visualize the biological activity of the compounds.

Determination of the Virucidal (Virus-Inactivating) Activity of the Compounds
To determine the virucidal activity of compound 3a (10 µM), SARS-CoV-2 in DMEM (titers of 10 7 , 10 6 , and 10 4 PFU/mL) was mixed with the compound and incubated in the dark at 37 • C for 120 min.Subsequently, the viability of the compound-treated virus was estimated using a plaque assay, as previously described [67].Viral titers were expressed as PFU/mL (Figure 6A).

Confocal Microscopy
Confocal microscopy was used to study the penetration of compound 3a into cellular membranes.PS cells were treated with 3a (10 µM) in a µ-Slide 8 Well (IbidiGmbH, Gräfelfing, Germany) in the dark for 60 min at 37 • C. The samples were analyzed for fluorescent signal distribution and intensity using a Leica SP8 confocal microscope (Leica, Wetzlar, Germany) as described previously [20].

Interaction of the Compounds with Liposomes
The samples' steady-state fluorescence characteristics were measured in L-format using a Chronos DFD Fluorescence spectrometer (ISS, Baltimore, MD, USA) equipped with a 300 W Cermax xenon arc lamp (ISS, Baltimore, MD, USA), a concave holographic grating monochromator, and a PMT detector.The required amount of each sample was diluted in DMSO and measured in a 1-cm quartz cuvette, at a constant temperature of 25 • C. The resulting data were evaluated using Vinci software version 2 (ISS, Baltimore, MD, USA) and correlated to the utilized optical configuration.
The kinetics of the incorporation of compounds into liposome membrane models were determined using steady-state fluorescence spectroscopy at a constant excitation and emission wavelength, according to the corresponding sample excitation and emission maxima.We added 50 µL of LNP suspension to 10 µM of the analyte in PBS and monitored the increase in fluorescence intensity over the time range 0-2500 s.

Studies of Photodynamic Inactivation of FIPV Virions
Virus in DMEM (titer of 10 6 PFU/mL) was mixed with 3a (0-10 µM) in a microtiter plate in daylight and irradiated for 10 min at RT with LEDs (465-480 nm) at an approximate power density of 30 mW/cm 2 (Figure 7D, top panel).As a negative control, the virus was mixed with 3a (0-10 µM) in daylight and incubated with the compound for 10 min in the dark at RT (Figure 7D, middle panel).Subsequently, both irradiated and non-irradiated virus samples were incubated in the dark at 37 • C for an additional 60 min.Viral titers were determined by plaque assays (also in daylight).To eliminate the influence of daylight on compound activity, the entire experiment, including all manipulations with the samples, was performed in a dark room under red light only.The virus sample was mixed with 3a (0-10 µM), incubated at 37 • C for 60 min, and the viability of the virus was assessed by plaque assays (Figure 7D, bottom panel).The plaque assays were also performed under red light.

Studies of Light-Induced Cytotoxicity (Photocytotoxicity)
To determine the light-induced cytotoxicity of the compounds, CRFK cells were cultured in 96-well plates for 24 h to form a confluent monolayer and then treated with the tested compounds at concentrations ranging from 0 to 10 µM in daylight.Subsequently, cells treated with the compounds were irradiated with LEDs (465-480 nm, 30 mW/cm 2 ) for 10 min at RT (Figure 7A, top panel).As a negative control, CRFK cells were treated with the compounds in daylight and then incubated in the dark at RT for 10 min (Figure 7A, bottom panel).Subsequently, both irradiated and non-irradiated cell monolayers were incubated for 48 h in the dark at 37 • C.After incubation, the potential photocytotoxicity of the compounds was determined using Cell Counting Kit-8 (Dojindo Molecular Technologies, Munich, Germany) according to the manufacturer's instructions.

Conclusions
In conclusion, this study investigated the spectral properties and 1 O 2 generation capability of a series of novel perylene-based compounds.Antiviral activity against two important coronaviruses, SARS-CoV-2 and FIPV, was studied in vitro to elucidate their mechanism of antiviral action based on (i) specific interaction with the viral envelope and (ii) photosensitization and 1 O 2 -mediated impairment of viral particles.The results revealed that 3-ethynylperylene derivatives exhibited higher antiviral activity compared to 2-ethynylperylene derivatives.Compound 3b showed the strongest potency against SARS-CoV-2 in the whole series.Interestingly, the presence of a bromine atom in the compounds did not significantly affect their antiviral activity.
Analysis of singlet oxygen generation and antiviral activity data suggests that the differences in antiviral properties among perylene photosensitizers could not be attributed solely to variations in their singlet oxygen generation capacity.However, a trend was observed, indicating that compounds with a higher quantum yield of singlet oxygen generation generally exhibited higher antiviral activity.These findings highlight the importance of both structural factors and affinity to the lipid bilayer for determining the antiviral activity of perylene derivatives.
The anti-SARS-CoV-2 and anti-FIPV activities of the perylenylethynylphenols were strictly dependent on the excitation light and disappeared when the experiments were performed under red light (with a wavelength far from the excitation maxima of the compounds).Exposure of the virus-compound mixture to daylight (normal lighting conditions) during sample preparation was sufficient for the induction of the light-dependent antiviral activity of the perylenylethynylphenols.Thus, all of the observed antiviral effects of these compounds were induced exclusively by daylight and were even enhanced by light of the excitation wavelength.The light-dependent antiviral activity of perylenylethynylphenols is closely related to 1 O 2 photogeneration.In fact, 1 O 2 itself is responsible for the antiviral (or virucidal/virus-inactivating) activity of the compounds via the peroxidation of membrane lipids and destruction of viral envelopes, leading to blockage of the virus-cell fusion machinery.
Perylenylethynylphenols and other amphipathic perylene compounds hold promise as potential candidates for the development of effective antiviral agents against enveloped

Figure 1 .
Figure 1.Recently studied perylene antivirals and the parent compound for this study (HOPY11).Figure 1.Recently studied perylene antivirals and the parent compound for this study (HOPY11).

Figure 1 .
Figure 1.Recently studied perylene antivirals and the parent compound for this study (HOPY11).Figure 1.Recently studied perylene antivirals and the parent compound for this study (HOPY11).

Figure 4 .
Figure 4. Normalized absorbance spectra of perylene 3e and SOSG in methanol solution.Region of LED irradiation for singlet oxygen generation by perylene compounds is shown in blue, wavelength of SOSG excitation is shown in green.Inset: time course of SOSG fluorescence intensity in a reaction with 1 O2 generated by perylene compound 3e under blue light irradiation.

Figure 4 .
Figure 4. Normalized absorbance spectra of perylene 3e and SOSG in methanol solution.Region of LED irradiation for singlet oxygen generation by perylene compounds is shown in blue, wavelength of SOSG excitation is shown in green.Inset: time course of SOSG fluorescence intensity in a reaction with 1 O 2 generated by perylene compound 3e under blue light irradiation.

Molecules 2023 , 19 Figure 5 .
Figure 5. Cytotoxicity and anti-coronaviral activity of perylenylethynylphenols in vitro.(A) Schematic representation of the cytotoxicity assay using Cell Counting Kit-8 (Dojindo Molecular Technologies, Munich, Germany).(B) Schematic representation of the viral titer reduction assay.(C) Cytotoxicity of perylenylethynylphenols at the indicated concentrations for Vero cells.(D) Anti-SARS-CoV-2 activity of perylenylethynylphenols at the indicated concentrations in Vero cells.(E) Anti-FIPV activity of compound 3a in CRFK cells.Data are expressed as the mean ± SD of two independent experiments, each performed in triplicate.The horizontal dashed line indicates the minimum detectable threshold of 1.44 log10 PFU/mL.

Figure 5 .
Figure 5. Cytotoxicity and anti-coronaviral activity of perylenylethynylphenols in vitro.(A) Schematic representation of the cytotoxicity assay using Cell Counting Kit-8 (Dojindo Molecular Technologies, Munich, Germany).(B) Schematic representation of the viral titer reduction assay.(C) Cytotoxicity of perylenylethynylphenols at the indicated concentrations for Vero cells.(D) Anti-SARS-CoV-2 activity of perylenylethynylphenols at the indicated concentrations in Vero cells.(E) Anti-FIPV activity of compound 3a in CRFK cells.Data are expressed as the mean ± SD of two independent experiments, each performed in triplicate.The horizontal dashed line indicates the minimum detectable threshold of 1.44 log 10 PFU/mL.

Figure 6 .
Figure 6.Interaction of compound 3a with viral envelopes, cellular membranes and liposomal mebranes.(A) Demonstration of direct (virucidal) activity of 3a against SARS-CoV-2 and its interaction with the viral envelope.Schematic representation of the experiment (virucidal plaque assay).(B) Quantification of the virucidal activity of 3a using Vero E6 cells.The virus at the indicated titers was incubated with the compounds (10 µM) for 120 min.Viral titers were then quantified by plaque assays.(C) Penetration of 3a into PS cells.Cells were seeded on slides for 24 h, then treated with 3a (10 µM) and incubated for 1 h.Photomicrographs were taken using confocal microscopy.(D) Excitation and emission spectra of 3a (10 µM) in DMSO.(E) Fluorescence spectra of free compound 3a in PBS (10 µM, dashed line) and a mixture of 3a and LPS in PBS.(F) Kinetics of the penetration of 3a (10 µM) into liposomes, measured at 520 nm.Data are expressed as the mean ± SD of two independent experiments, each performed in triplicate.

Figure 6 .
Figure 6.Interaction of compound 3a with viral envelopes, cellular membranes and liposomal mebranes.(A) Demonstration of direct (virucidal) activity of 3a against SARS-CoV-2 and its interaction with the viral envelope.Schematic representation of the experiment (virucidal plaque assay).(B) Quantification of the virucidal activity of 3a using Vero E6 cells.The virus at the indicated titers was incubated with the compounds (10 µM) for 120 min.Viral titers were then quantified by plaque assays.(C) Penetration of 3a into PS cells.Cells were seeded on slides for 24 h, then treated with 3a (10 µM) and incubated for 1 h.Photomicrographs were taken using confocal microscopy.(D) Excitation and emission spectra of 3a (10 µM) in DMSO.(E) Fluorescence spectra of free compound 3a in PBS (10 µM, dashed line) and a mixture of 3a and LPS in PBS.(F) Kinetics of the penetration of 3a (10 µM) into liposomes, measured at 520 nm.Data are expressed as the mean ± SD of two independent experiments, each performed in triplicate.

Figure 7 .
Figure 7. Light-dependent cytotoxicity and antiviral activity of perylenylethynylphenols. (A) Determination of photocytotoxicity (schematic representation of experiments).(B) Cytotoxicity of perylenylethynylphenols under normal light conditions (sample preparation in daylight, incubation of compounds with CRFK cells in the dark).(C) Cytotoxicity of perylenylethynylphenols after irradiation with blue light for 10 min at RT with LEDs (465-480 nm, 30 mW/cm 2 ).(D) Light-dependent anti-FIPV activity of compound 3a (schematic representation of the experiments).(E) FIPV was treated with 3a, as described in (D), and the viability of the compound-treated virus was determined by plaque assays.Data are expressed as the mean ± SD of two independent experiments, each performed in triplicate.The horizontal dashed line indicates the minimum detectable threshold of 1.44 log10 PFU/mL.

Figure 7 .
Figure 7. Light-dependent cytotoxicity and antiviral activity of perylenylethynylphenols. (A) Determination of photocytotoxicity (schematic representation of experiments).(B) Cytotoxicity of perylenylethynylphenols under normal light conditions (sample preparation in daylight, incubation of compounds with CRFK cells in the dark).(C) Cytotoxicity of perylenylethynylphenols after irradiation with blue light for 10 min at RT with LEDs (465-480 nm, 30 mW/cm 2 ).(D) Light-dependent anti-FIPV activity of compound 3a (schematic representation of the experiments).(E) FIPV was treated with 3a, as described in (D), and the viability of the compound-treated virus was determined by plaque assays.Data are expressed as the mean ± SD of two independent experiments, each performed in triplicate.The horizontal dashed line indicates the minimum detectable threshold of 1.44 log 10 PFU/mL.

Table 1 .
Spectral properties, singlet oxygen generation, and biological evaluation of perylenylethynylphenols

Table 1 .
Spectral properties, singlet oxygen generation, and biological evaluation of perylenylethynylphenols