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Dolgikh, A.

Publications and source records attributed to Dolgikh, A..

3 recordsLinked to original sources

The NimB2 opsonin promotes S. aureus recognition by macrophages in Drosophila melanogaster

Phagocytosis is a conserved effector process of innate immunity that enables specialized immune cells to detect, engulf, and degrade invading microbes as well as dying cells and cellular debris. Soluble opsonins enhance this process by coating target surfaces and promoting their recognition and uptake by phagocytic cells. In Drosophila, many phagocytic receptors of the Nimrod family have been characterized, but opsonins remain comparatively poorly understood. Here, we identified the secreted Nimrod protein NimB2 as an insect opsonin that promotes the clearance of Staphylococcus aureus. NimB2 is produced by the fat body, secreted into the hemolymph, and required for resistance to S. aureus infection. NimB2 null mutants showed reduced phagocytosis of S. aureus while maintaining Toll dependent antimicrobial peptide expression. NimB2 promotes S. aureus binding to plasmatocytes (Drosophila macrophages). Using binding assays and bacterial cell wall mutants, we found that NimB2 recognizes a lipoteichoic acid (LTA) dependent determinant on the S. aureus surface and coats the bacterium. We further show that this coating enables efficient recognition by hemocytes via the phagocytic receptor Eater, which is necessary for NimB2 dependent binding. Moreover, Eater overexpression enhances NimB2 mediated association of S. aureus with hemocytes. Together, our results establish NimB2 as an insect opsonin that links a specific bacterial ligand to a phagocytic receptor.

immunology↗

Reproducibility of Scientific Claims in Drosophila Immunity: A Retrospective Analysis of 400 Publications

Drosophila immunity has been the focus of intense study and has impacted other research fields including innate immunity and agriculturally or epidemiologically relevant investigations of insect pests and vectors. Unsurprisingly for such a large body of work, some published results were later found to be irreplicable. Although some results have been contradicted in the literature, many have no published follow-up, either due to a lack of research or low motivation to publish negative or contradictory results. We have addressed this by performing a reproducibility project that analyses the conceptual replicability of claims from articles published on Drosophila immunity before 2011. To assess replicability, we extracted claims from 400 articles on the Drosophila immune response to bacteria and fungi and performed preliminary verification by comparing these claims to other published literature in the field. Using alternative approaches, we also experimentally tested some unchallenged claims, with no published follow-up. The intent of this analysis was to centralize evidence on insights and findings to improve clarity for scientists that may base research programs on these data. Although the aim of the ReproSci project is to assess the replicability of claims made in articles published in the field of Drosophila immunity, it is in no way an assessment of the scientific value of the research. All our data are published on a publicly available website associated with this article (https://ReproSci.epfl.ch/) that encourages community participation. This article provides a short summary of claims that were found to have contradictory evidence, which may help the community to assess past findings on Drosophila immunity and improve clarity going forward. Statistical analysis of this reproducibility study and metascience insights obtained from this approach are discussed in a companion article.

genetics↗

The secreted Nimrod NimB1 negatively regulates early steps of apoptotic cell phagocytosis in Drosophila

Efferocytosis, the efficient clearance of apoptotic cells (ACs) by phagocytes, is vital for maintaining tissue homeostasis. Here, we reveal the role of the secreted protein NimB1 in reducing apoptotic cell recognition and binding in the early stages of efferocytosis. NimB1 is expressed in macrophages (also called plasmatocytes) and binds to ACs in a phosphatidylserine-dependent manner. Structural analysis shows that NimB1 shares striking similarities with the bridging molecule NimB4, and possesses two phosphatidylserine-binding motifs, supporting its role in efferocytosis. Larval macrophages of NimB1 null mutants display a hyper-phagocytic phenotype characterized by increased engulfment of ACs. Confocal imaging reveals that NimB1 specifically inhibits early steps in internalization of ACs, but does not impact phagosome maturation. We find that NimB1 is a secreted factor that negatively regulates efferocytosis, antagonizing the role of NimB4. Our study and the analogous opposing roles of Draper Isoforms II and I in efferocytosis suggest that a balance of negative and positive regulators allows optimization of the rate of apoptotic cell clearance by macrophages.

immunology↗