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Lespine, A.

Publications and source records attributed to Lespine, A..

2 recordsLinked to original sources

Structural and evolutionary insights into DAF-12 interactions with transcriptional coactivators in parasitic nematodes

Parasitic nematodes infect billions of humans and livestock worldwide, causing major health and economic burdens, while the spread of anthelmintic resistance threatens current control strategies. A critical step in parasite infection is the resumption of development of infective third-stage larvae (iL3) upon host entry, a process controlled by the nuclear receptor DAF-12. Activation of DAF-12 by dafachronic acids promotes developmental progression and reproductive maturation, making this receptor an attractive therapeutic target. However, the molecular mechanisms governing DAF-12 activation, particularly transcriptional coactivator recruitment, remain poorly understood. Here, we combined biophysical, cellular, structural, and bioinformatic approaches to investigate coactivator recognition by DAF-12 from the parasitic nematodes Brugia malayi and Haemonchus contortus. Crystal structures of ligand-bound DAF-12 ligand-binding domains in complex with coactivator-derived peptides reveal conserved features of ligand-dependent coactivator recruitment shared with mammalian nuclear receptors. In addition, we uncover previously unrecognized interaction features, including motif-specific contacts that extend beyond the canonical LXXLL binding mode of coactivators and distinct patterns of DAF-12 conservation across nematode clades. Structure-guided analyses redefine the interaction motif of the only described parasite-specific coactivator DIP-1 and suggest novel candidate motifs for DAF-12-interacting proteins. Together, these findings establish the structural basis of coactivator binding to nematode DAF-12 and provide mechanistic insight into the transcriptional regulation underlying parasite development. These results expand current understanding of nuclear receptor signaling in parasitic nematodes and provide a framework for the future design of strategies aimed at disrupting DAF-12 activation as a potential antiparasitic approach. Author SummaryParasitic nematodes infect billions of people and livestock worldwide, causing major health and economic burdens, while increasing resistance threatens current treatments. These parasites rely on a developmental switch that allows infectious larvae to resume growth inside their host, a process controlled by the nuclear receptor DAF-12. Blocking this pathway could prevent parasites from establishing infection. However, the molecular mechanisms regulating DAF-12 activation remain poorly understood. Here, we investigate how DAF-12 from two parasitic nematodes, Brugia malayi and Haemonchus contortus, interacts with transcriptional coactivators that enable gene activation, using a combination of biophysical, cellular, structural, and bioinformatic approaches. We identified conserved features of ligand-dependent coactivator recruitment shared with mammalian nuclear receptors as well as nematode-specific interaction mechanisms that vary across evolutionary clades. These findings provide new insights into the structural basis of coactivator binding to DAF-12 and advance our understanding of a key pathway controlling parasitic nematode development.

biochemistry↗

Larval motility assay using WMicrotracker: a high throughput test to discriminate between resistance and susceptibility to anthelmintic drugs in nematodes

Grazing ruminants suffer from various helminth infections particularly those caused by gastrointestinal nematode (GIN) parasites, which have a considerable impact on their welfare and productivity. Treatment predominantly relies on macrocyclic lactone (ML) anthelmintics, but their widespread application has led to the emergence of drug-resistant parasite populations worldwide. The standard method for detecting resistance, the Faecal Egg Count Reduction Test (FECRT), is susceptible to misinterpretation, leading to flawed management decisions that undermine parasite control efforts. Thus, there is a pressing need for robust resistance detection methods in field parasites. We investigated the potential of the WMicrotrackerTM (WMi) motility assay, previously unexplored in ML resistance assessment. The assay first compared ivermectin (IVM) susceptibility among wild-type Bristol N2 (N2B), IVM-selected (IVR10), and nhr-8 loss-of-function (AE501; nhr8(ok186)) Caenorhabditis elegans strains. Dose-response curves indicated differences in IVM susceptibility among strains, with IVR10 exhibiting a 2.12-fold decrease in sensitivity compared to N2B. Cross-resistance between IVM, moxidectin (MOX), and eprinomectin (EPR) was explored, demonstrating reduced susceptibility in IVR10 across all drugs compared to N2B. Further investigation was conducted using Haemonchus contortus (H. contortus) to assess the assays applicability in discriminating susceptible from resistant isolates. Results revealed significant differences in drug potency between susceptible and resistant isolates, with MOX demonstrating the highest efficacy. Resistance factors (RF) highlighted the substantial resistance of the resistant isolate to EPR. The motility assay effectively discriminated susceptible from resistant isolates in both C. elegans and H. contortus. Our findings demonstrate, for the first time, the relevance of the motility assay by WMi as a functional indicator of resistance in nematodes, offering a promising avenue for detecting resistance to MLs. This research sheds light on a novel approach for monitoring drug resistance, vital for effective parasite management strategies.

pharmacology and toxicology↗