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Calvache, S.

Publications and source records attributed to Calvache, S..

2 recordsLinked to original sources

PPa1 insufficiency drives lysosomal storage disease and inflammatory macrophage expansion in the bone marrow.

Inorganic pyrophosphatase-1 (PPa1) is an essential enzyme proposed to limit accumulation of the ubiquitous metabolic byproduct inorganic pyrophosphate, yet its role beyond a general housekeeping function remains poorly understood. We generated viable hypomorphic alleles of PPa1 through random mutagenesis in mice and unexpectedly found that PPa1 insufficiency causes a lysosomal storage disease of the bone marrow. Mutant mice developed impaired hematopoiesis and defective skeletal mineralization in a hematopoietic-intrinsic manner. The bone marrow was infiltrated by glycolipid-laden macrophages that were marked by high Spp1 and CD14 expression, blunted lysosomal acidification, metabolic stress, and a distinct inflammatory transcriptional program. Consistent with a lysosomal storage defect, PPa1-deficient bone marrow accumulated elevated levels of long-chain glucosyl-sphingolipids and sphingosine. These findings identify PPa1 as a previously unrecognized regulator of lysosomal function in myeloid cells that restrains inflammatory macrophage expansion and prevents bone marrow lysosomal storage pathology.

immunology↗

The Structural Basis of Pacs1-Wdr37 Complex Assembly and Stability

Phosphofurin acidic cluster sorting protein 1 (Pacs1) is a multidomain adaptor proposed to bind transmembrane cargo proteins to facilitate their intracellular trafficking. Pacs1 also forms a complex with WD-repeat protein 37 (Wdr37), which is essential for lymphocyte homeostasis. Despite numerous proposed binding partners, a validated structure for Pacs1-containing protein complexes is lacking. Here, we present the cryo-electron microscopy structure of the Pacs1-Wdr37 complex. Pacs1 binds Wdr37 through a conserved interface within its furin-binding region (FBR), the domain previously linked to cargo recognition. This interaction stabilizes Wdr37 and is critical for the expression of both proteins. A gain-of-function mutation in PACS1 (R203W) causes a highly penetrant neurodevelopmental syndrome. This pathogenic mutation lies on a solvent-exposed surface of the FBR and does not disrupt complex formation. Instead, Pacs1-R203W remains dependent on Wdr37 for stability and its levels can be reduced through targeted Wdr37 proteolytic degradation. Structural homology of the FBR to synaptotagmin C2 domains reveals a previously unrecognized ability of Pacs1 to bind negatively charged phospholipids through a unique positively charged cleft. Together these findings define the structural basis for Pacs1-Wdr37 complex assembly and stability, present potential strategies for Pacs1-mediated neurodevelopmental disease, and suggest novel Pacs1 functions in membrane association.

biochemistry↗