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Biology subjects

Caro, A. A.

Publications and source records attributed to Caro, A. A..

2 recordsLinked to original sources

VSIG4-Expressing Macrophages Contribute To Anti-Parasitic And Anti-Metastatic Responses In The Peritoneal Cavity

Peritoneal tissue-resident macrophages, also referred to as large peritoneal macrophages (LPMs), play an important role as gatekeepers of peritoneal homeostasis by providing a first line of defense against pathogenic threats. About a third of the LPMs express the surface receptor V-set and Immunoglobulin domain containing 4 (VSIG4), but it is unclear to what extent these cells differ from their VSIG4-negative counterparts and perform dedicated functions. Here, we demonstrate that VSIG4+ LPMs, in contrast to VSIG4- LPMs, are in majority derived from embryonal precursors and their occurrence is to a large extent independent from sex and microbiota. Although their transcriptome and surface proteome are indistinguishable from VSIG4- LPMs at steady-state, VSIG4+ LPMs are superior in phagocytosing Gram-positive bacteria and colorectal carcinoma (CRC) cells. In-house generated anti-VSIG4 nanobody constructs that are antibody-dependent cell-mediated cytotoxicity (ADCC)-enabled allowed a selective elimination of the VSIG4+ LPM subset without affecting the overall LPM content of the peritoneal cavity. This strategy uncovered a role for VSIG4+ LPMs in lowering the first peak of parasitemia in a Trypanosoma brucei brucei infection model and in reducing the outgrowth of CRC cells in the peritoneal cavity, a prime metastatic site in CRC patients. Altogether, our data uncover a protective role for VSIG4+ LPMs in infectious and oncological diseases in the peritoneal cavity.

immunology↗

Enhancing reproducibility and decentralization in single cell research with biocytometry

Biomedicine today is experiencing a shift towards decentralized data collection, which promises enhanced reproducibility and collaboration across diverse laboratory environments. This inter-laboratory study evaluates the performance of biocytometry, a method utilizing engineered bioparticles for enumerating cells based on their surface antigen patterns. In a decentralized framework, spanning 78 assays conducted by 30 users across 12 distinct laboratories, biocytometry consistently demonstrated significant statistical power in discriminating numbers of target cells at varying concentrations as low as 1 cell per 100,000 background cells. User skill levels varied from expert to beginner capturing a range of proficiencies. Measurement was performed in a decentralized environment without any instrument cross-calibration or advanced user training outside of a basic instruction manual. The results affirm biocytometry to be a viable solution for immunophenotyping applications demanding sensitivity as well as scalability and reproducibility and paves the way for decentralized analysis of rare cells in heterogeneous samples.

cell biology↗