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Biology subjects

Adili, R.

Publications and source records attributed to Adili, R..

2 recordsLinked to original sources

Identification of the role of SEL1L in platelet function through a multi-species genetic investigation

SEL1L is a well-known protein in the endoplasmic reticulum associated degradation (ERAD) pathway. While it is known to be expressed in platelets, SEL1L has never been shown to play an active role. Here we find evidence that SEL1L regulates platelet function. We first identified SEL1L through the study of Atypical Equine Thrombasthenia (AET), an autosomal recessive platelet disorder found in Thoroughbred horses. A missense variant in SEL1L (c.1810A>G p.Ile604Val) was found in AET-affected horses, which we show is associated with decreased protein expression. SEL1L is intracellular in equine platelets and localizes to the surface upon activation with thrombin. Platelets from homozygous horses exhibit significant decreases in spreading on immobilized collagen. Human megakaryocytes were found to have two SEL1L protein isoforms that increase in expression during megakaryopoiesis, although only one is delivered to mature platelets. Studies using inducible mouse and constitutive zebrafish knockouts demonstrate that SEL1L is necessary for efficient platelet or thrombocyte (fish equivalent) adhesion to sites of endothelial injury. These data reveal a previously undescribed and conserved role for the ERAD pathway in the etiology of AET and platelet function, which may play a role in human platelet disorders as well. Brief SummaryUsing a multi-species approach, SEL1L was determined to have a role in platelet function, specifically in helping platelets properly adhere to sites of injury,

genetics↗

An age-specific platelet differentiation path from hematopoietic stem cells contributes to exacerbated thrombosis

Platelet dysregulation is drastically increased with advanced age and contributes to making cardiovascular disorders the leading cause of death of elderly humans. Hematopoietic stem and progenitor cells continuously give rise to platelets, but their contributions to variable platelet production and activity throughout life remain unclear. Here we reveal a direct differentiation pathway from hematopoietic stem cells into platelets that is unique to aging. An unequivocal genetic lineage tracing mouse model demonstrated that this age-specific pathway is progressively propagated over time. Remarkably, the age-specific platelet path is decoupled from all other hematopoietic lineages, including erythropoiesis, and operates as an additional layer in parallel with canonical platelet production. This results in two molecularly and functionally distinct populations of megakaryocyte progenitor cells that that operate in parallel. The age-specific megakaryocyte progenitor population has profoundly enhanced capacity to engraft, expand, and reconstitute platelets, and produces an additional platelet population that exists only in old mice. Consistent with increased thrombotic incidence upon aging, the two pools of co-existing platelets contribute to age-related thrombocytosis and dramatically increased thrombosis in vivo. Upon acute, platelet-specific stress, the age-specific MkPs endowed old mice with superior capacity to rapidly restore platelet counts. These findings reveal stem cell-based aging as a mechanism for platelet dysregulation and identify an aging-induced population of functionally enhanced MkPs as a unique source of age-specific platelets. >HIGHLIGHTSO_LIAging leads to two parallel platelet specification paths from HSCs C_LIO_LIThe shortcut platelet pathway is perpetuated by highly expansive MkPs unique to aging C_LIO_LIThe age-specific differentiation path contributes to thrombosis and platelet hyperreactivity C_LIO_LIAge-specific MkPs serve as potent first responders to acute platelet loss C_LI

cell biology↗