Publications by authors named "Nihar R Panigrahi"

Article Synopsis
  • - Antagonists like Ziconotide and Gabapentin target CaV2.2 calcium channels to relieve chronic pain, but their clinical use is limited due to issues like narrow therapeutic windows and potential for misuse or side effects.
  • - A new compound called C2230 has been identified as a blocker of CaV2.2 channels, showing multiple beneficial effects such as trapping the channel in an inactivated state and specifically targeting pain without affecting other ion channels or motor functions.
  • - C2230 effectively reduced pain-like behaviors in various animal models and human neurons, suggesting it could be developed as a new analgesic with a unique binding mechanism that differentiates it from existing treatments.
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Radical addition to dehydroalanine (Dha) represents an appealing, modular strategy to access non-canonical peptide analogues for drug discovery. Prior studies on radical addition to the Dha residue of peptides and proteins have demonstrated outstanding functional group compatibility, but the lack of stereoselectivity has limited the synthetic utility of this approach. Herein, we address this challenge by employing chiral nickel catalysts to control the stereoselectivity of radical addition to Dha on oligopeptides.

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Peptides are fundamental therapeutic modalities whose sequence-specific synthesis can be automated. Yet, modern peptide synthesis remains atom uneconomical and requires an excess of coupling agents and protected amino acids for efficient amide bond formation. We recently described the rational design of an organocatalyst that can operate on Fmoc amino acids─the standard monomers in automated peptide synthesis ( , 141, 15977).

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Constrained peptides have proven to be a rich source of ligands for protein surfaces, but are often limited in their binding potency. Deployment of nonnatural side chains that access unoccupied crevices on the receptor surface offers a potential avenue to enhance binding affinity. We recently described a computational approach to create topographic maps of protein surfaces to guide the design of nonnatural side chains [ , , 15560].

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Amphiphilic assemblies made from diverse synthetic building blocks are well known for their biomedical applications. Here, we report the synthesis of gemini-type amphiphilic molecules that form stable assemblies in water. The assembly property of molecule M2 in aqueous solutions was first inferred from peak broadening observed in the proton NMR spectrum.

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Amide bonds are ubiquitous in peptides, proteins, pharmaceuticals, and polymers. The formation of amide bonds is a straightforward process: amide bonds can be synthesized with relative ease because of the availability of efficient coupling agents. However, there is a substantive need for methods that do not require excess reagents.

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