Design, Synthesis and Evaluation of Novel Molecular Hybrids between Antiglaucoma Drugs and H 2 S Donors.
Rosa SparacoValentina CitiElisa MagliAlma MartelliEugenia PiragineVincenzo CalderoneGiorgia AndreozziElisa PerissuttiFrancesco FrecenteseVincenzo SantagadaGiuseppe CaliendoBeatrice SeverinoAngela CorvinoFerdinando FiorinoPublished in: International journal of molecular sciences (2022)
Glaucoma is a group of eye diseases consisting of optic nerve damage with corresponding loss of field vision and blindness. Hydrogen sulfide (H 2 S) is a gaseous neurotransmitter implicated in various pathophysiological processes. It is involved in the pathological mechanism of glaucomatous neuropathy and exerts promising effects in the treatment of this disease. In this work, we designed and synthetized new molecular hybrids between antiglaucoma drugs and H 2 S donors to combine the pharmacological effect of both moieties, providing a heightened therapy. Brinzolamide, betaxolol and brimonidine were linked to different H 2 S donors. The H 2 S-releasing properties of the new compounds were evaluated in a phosphate buffer solution by the amperometric approach, and evaluated in human primary corneal epithelial cells (HCEs) by spectrofluorometric measurements. Experimental data showed that compounds 1c , 1d and 3d were the hybrids with the best properties, characterized by a significant and long-lasting production of the gasotransmitter both in the aqueous solution (in the presence of L-cysteine) and in the intracellular environment. Because, to date, the donation of H 2 S by antiglaucoma H 2 S donor hybrids using non-immortalized corneal cells has never been reported, these results pave the way to further investigation of the potential efficacy of the newly synthesized compounds.
Keyphrases
- optic nerve
- optical coherence tomography
- aqueous solution
- induced apoptosis
- kidney transplantation
- endothelial cells
- oxidative stress
- wound healing
- cataract surgery
- induced pluripotent stem cells
- nitric oxide
- endoplasmic reticulum stress
- bone marrow
- signaling pathway
- mesenchymal stem cells
- fluorescent probe
- reduced graphene oxide
- gold nanoparticles
- cell therapy
- replacement therapy
- reactive oxygen species