Photoactive ruthenium nitrosyls as NO donors: how to sensitize them toward visible light

Nicole L Fry1, Pradip K Mascharak

  • 1Department of Chemistry and Biochemistry, University of California, Santa Cruz, 95064, United States.

Insights

Researchers developed photosensitive ruthenium nitrosyls for targeted nitric oxide (NO) delivery. These visible-light-activated compounds enable precise NO release for potential phototherapy against infections and malignancies.

Area of Science:

  • Medicinal Chemistry
  • Photochemistry
  • Materials Science

Background:

  • Nitric oxide (NO) induces apoptosis but lacks targeted delivery methods.
  • Current NO donors release indiscriminately, limiting therapeutic applications.
  • Photosensitive NO donors offer localized drug delivery via light activation.

Purpose of the Study:

  • To design and synthesize novel ruthenium nitrosyls as visible-light-sensitive NO donors.
  • To enable targeted delivery of nitric oxide for phototherapy applications.
  • To explore strategies for tuning NO release under visible light.

Main Methods:

  • Synthesis of ruthenium nitrosyl complexes with tailored ligands.
  • Photochemical studies to determine NO release kinetics under visible light (400-600 nm).
  • Computational modeling (DFT and TDDFT) to guide ligand design and understand sensitization mechanisms.
  • Cellular studies to demonstrate NO delivery and apoptosis induction.

Main Results:

  • Developed ruthenium nitrosyls that release NO upon exposure to visible light.
  • Ligand modification (donor atoms, conjugation, substituents) predictably tunes photosensitivity.
  • Dye molecule attachment as light-harvesting antennas enhances visible light sensitivity.
  • Fluorescent dye ligands allow tracking of NO donors within cells.

Conclusions:

  • Visible-light-sensitive ruthenium nitrosyls are effective NO donors for targeted phototherapy.
  • Ligand design and dye sensitization offer versatile strategies for developing novel photopharmaceuticals.
  • These tailored NO donors show promise for treating infections and malignancies.

Related Concept Videos

Photochemical Electrocyclic Reactions: Stereochemistry01:26

Photochemical Electrocyclic Reactions: Stereochemistry

The absorption of UV–visible light by conjugated systems causes the promotion of an electron from the ground state to the excited state. Consequently, photochemical electrocyclic reactions proceed via the excited-state HOMO rather than the ground-state HOMO. Since the ground- and excited-state HOMOs have different symmetries, the stereochemical outcome of electrocyclic reactions depends on the mode of activation; i.e., thermal or photochemical.
Selection Rules: Photochemical Activation
The Photochemical Reaction Center01:29

The Photochemical Reaction Center

Reaction centers are pigment-protein complexes that initiate energy conversion from photons to chemical entities. Therefore, photochemical reaction center is a more appropriate term that describes these complexes. The Nobel laureates Robert Emerson and William Arnold provided the first experimental evidence of photochemical reaction centers by demonstrating the participation of nearly 2,500 chlorophyll molecules for the release of just one molecule of oxygen. Despite thousands of photosynthetic...
Anoxygenic Photosynthesis01:30

Anoxygenic Photosynthesis

Anoxygenic photosynthesis is a phototrophic process that captures light energy to drive carbon fixation without producing molecular oxygen. Unlike oxygenic photosynthesis, which utilizes water as an electron donor and releases oxygen, anoxygenic phototrophs use alternative electron donors such as hydrogen sulfide (H₂S), elemental sulfur (S⁰), or thiosulfate (S₂O₃²⁻). This process is carried out by diverse groups of bacteria, including purple bacteria, green sulfur bacteria, heliobacteria, and...
The Z-Scheme of Electron Transport in Photosynthesis01:34

The Z-Scheme of Electron Transport in Photosynthesis

The light reactions of photosynthesis assume a linear flow of electrons from water to NADP+. During this process, light energy drives the splitting of water molecules to produce oxygen. However, oxidation of water molecules is a thermodynamically unfavorable reaction and requires a strong oxidizing agent. This is accomplished by the first product of light reactions: oxidized P680 (or P680+), the most powerful oxidizing agent known in biology. The oxidized P680 that acquires an electron from the...
Channel Rhodopsins01:11

Channel Rhodopsins

Most organisms use photoreceptors to sense and respond to light. Examples of photoreceptors include bacteriorhodopsins and bacteriophytochromes in some bacteria, phytochromes in plants, and rhodopsins in the photoreceptor cells of the vertebral retina. The light-sensitive property of these receptors is because of the bound chromophores, such as bilin in the phytochromes and retinal in the rhodopsins.
Rhodopsins belong to the family of cell surface proteins called G-protein coupled receptors,...
Radical Reactivity: Nucleophilic Radicals01:16

Radical Reactivity: Nucleophilic Radicals

Radicals adjacent to electron-donating groups are called nucleophilic radicals. These radicals readily react with electrophilic alkenes. The SOMO–LUMO interactions are the driving force for the reaction, where the high-energy SOMO of the electron-rich, nucleophilic radicals interacts with the low-energy LUMO of the electron-deficient, electrophilic alkenes. Such SOMO–LUMO interactions are the basis of reactive radical traps, affecting the selectivity in radical reactions. For instance, consider...