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Kirchmair, J.

Publications and source records attributed to Kirchmair, J..

2 recordsLinked to original sources

Targeting ligand binding sites in Plasmodium falciparum NCR1 enables antimalarial drug discovery

PfNCR1 is a Plasmodium falciparum cholesterol transporter at the plasma membrane-parasitophorous vacuole interface, which has recently emerged as a promising antimalarial target. Despite an immense interest in development of novel antimalarial compounds targeting PfNCR1, the molecular mechanism of PfNCR1 inhibition remains elusive. Here, we report cryo-EM structures of PfNCR1 in its apo state and bound to three inhibitors: MMV009108, MMV019662 and MMV028038. MMV009108 binds to the ''neck'' site at the ectodomain-membrane domain inter-face. MMV028038 displaces the sterol at the ectodomain ''ecto'' site. Remarkably, MMV019662 binds both sites: it associates near the bound sterol molecule at the ecto site and targets the neck site, thereby altering the sterol-sensing domain conformation. Importantly, we identify a novel antimalarial compound, G856-4236, which targets the ecto site exclusively. These four distinct modes of PfNCR1 inhibition advance our understanding of its conformational plasticity and es-tablish a framework for rational drug discovery targeting PfNCR1 and related transporters.

biochemistry↗

Primulagenin A is a potent inverse agonist of the nuclear receptor RAR-related orphan receptor gamma (RORγ)

Throughout history, herbal medicines and natural products have played a crucial role as therapeutics for humans, yet their molecular mechanisms of action often remain elusive. Here, we ask whether primulagenin A (PGA) from the traditionally used herbal substance Primula root, acts via the nuclear receptor ROR{gamma}, a key regulator of pro-inflammatory Th17 cells, which are linked to autoimmune diseases like psoriasis. Luciferase assays revealed a high potency (IC50 ~100 nM) and efficacy (Imax ~ 90%) of PGA as an inverse agonist of ROR{gamma}. To ensure sufficient supply, we established methods to isolate and synthesize PGA. Its binding to the human ROR{gamma} ligand binding domain was confirmed by nano differential scanning fluorimetry, and a structure-activity relationship was proposed by docking and site-directed mutagenesis. PGA downregulated ROR{gamma} target gene expression and inhibited murine and human Th17 differentiation in a concentration-dependent manner. It also reduced the proportion of IL-17A-producing Th17 cells. In this work, we identify PGA as a new, potent, and efficacious inverse agonist of ROR{gamma}, with potential for modulating immune responses in inflammatory and autoimmune diseases.

pharmacology and toxicology↗