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Biology subjects

Mattorre, B.

Publications and source records attributed to Mattorre, B..

2 recordsLinked to original sources

Microbiome Modulation Uncouples Efficacy and Toxicity Induced by Programmed Death-1/Programmed Death-Ligand1 Blockade

While asymptomatic smoldering multiple myeloma (SMM) holds an overall risk of progression to multiple myeloma (MM) at 10% per year, only active surveillance is offered to most patients affected by SMM, which leaves them in anxiety and frustration. Intestinal microbiota and gut-born T helper 17 (Th17) lymphocytes may act as drivers of MM evolution. In transgenic Vk*MYC mice developing de novo MM, which invariably evolves from Early-MM that mimics SMM to full-blown Late-MM, we investigated the impact of gut microbiota modulation on disease progression and susceptibility to immune checkpoint blockade (ICB). We report that administering the human commensal Prevotella melaninogenica to mice affected by Early-MM significantly delayed evolution to Late-MM. Mechanistically, treatment with P. melaninogenica induced increased production of short chain fatty acids. Butyrate prevented skew of dendritic cells towards a pro-Th17 phenotype and treated mice accumulated less disease induced Th17 cells in their bone marrow. P. melaninogenica also synergized with anti-PD-L1 antibodies by restraining Th17 cell expansion while unleashing ICB-induced full effector CD8+ T cells, eventually blocking progression to full-blown disease. Similar results were obtained in mice challenged with bortezomib-resistant Vk*MYC tumor cells, a model of more aggressive MM. When mice were exposed to imiquimod to mimic ICB-associated psoriasis-like lesions, P. melaninogenica ameliorated skin lesions caused by ICB. Thus, modulation of the gut microbiota with P. melaninogenica might represent a treatment for patients affected by SMM and would allow fully exploiting the antitumor potential of ICB in plasma cell dyscrasias. Key pointsAdministration of the human commensal Prevotella melaninogenica to Vk*MYC mice delayed evolution to symptomatic multiple myeloma; P. melaninogenica therapeutically synergized with PD-1/PD-L1 blockade also limiting immune-related adverse events.

immunology↗

A short ERAP2 that binds IRAP is expressed in macrophages independently from gene variation

The M1 zinc metalloproteases ERAP1, ERAP2 and IRAP play a role in HLA-I antigen presentation by refining the peptidome either in the ER (ERAP1 and ERAP2) or in the endosomes (IRAP). They have been also entrusted with other, although less defined, functions such as the regulation of the angiotensin system and blood pressure. In humans, ERAP1 and IRAP are commonly expressed. ERAP2 instead has evolved under balancing selection that maintains two haplotypes one of which undergoing RNA splicing leading to nonsense-mediated decay and loss of protein. Hence, likewise in rodents in which the ERAP2 gene is missing, about a quarter of the human population does not express ERAP2. We report here that macrophages, but not monocytes or other mononuclear blood cells, express and secrete an ERAP2 shorter form independently from the haplotype. The generation of this "short" ERAP2 is due to an autocatalytic cleavage within a distinctive structural motif and requires an acidic microenvironment. Remarkably, ERAP2 "short" binds IRAP and the two molecules are co-expressed in the endosomes as well as in the cell membrane. Of note, the same phenomenon could be observed in some cancer cells. These data prompt to reconsider the role of ERAP2 which might have been maintained in humans because fulfilling a relevant function as "short" form in specialized cells.

biochemistry↗