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Biology subjects

Bates, R. D.

Publications and source records attributed to Bates, R. D..

2 recordsLinked to original sources

Deletion of TUBB4A mitigates the oligodendrocyte and neuronal deficits in human iPSCs derived from individuals affected by H-ABC

TUBB4A-related leukodystrophy (TUBB4A-LD) is a rare neurologic disorder with a broad spectrum of phenotypes, including severe early infantile encephalopathy, late infantile Hypomyelination with Atrophy of the Basal ganglia and Cerebellum (H-ABC), and milder late infantile forms. H-ABC is closely associated with a recurrent pathogenic variant, p.Asp249Asn, in the gene encoding tubulin beta class IVA (TUBB4A), a microtubule component. H-ABC presents with progressive dystonia, mobility loss, aphasia, and swallowing dysfunction in childhood. H-ABC results in cell-autonomous deficits in oligodendrocytes (OLs), cerebellar granule neurons, and medium spiny neurons (MSNs). Antisense oligonucleotides targeting Tubb4a can alleviate symptoms in H-ABC mouse models. However, the efficacy and safety of TUBB4A knockout in human cells remain poorly understood. We studied patient-derived TUBB4AD249N, TUBB4A KO, and control individual pluripotent stem cells (iPSCs). TUBB4AD249N iPSC-derived OLs failed to mature, showing less complexity and myelination, reduced microtubule acetylation and detyrosination. TUBB4AD249N iPSC-derived MSNs also showed impaired maturation and neurite extension. TUBB4A KO in mutant iPSCs reduced cellular deficits and was well tolerated. These findings support that suppression of TUBB4A could be a safe, effective therapy for TUBB4A-LD.

neuroscience↗

Tropomyosin 1 promotes platelet adhesion and clot contraction separate from its roles in developmental hematopoiesis

Genome-wide associations studies (GWAS) have linked the Tropomyosin 1 (Tpm1) gene locus to quantitative blood trait variation, but related mechanisms are unclear. Tpm1 encodes an actin-binding protein that stabilizes actin filaments and influences cell adhesion, signaling, and actomyosin contractility. Murine Tpm1 deficiency enhances embryonic hemogenic endothelial cell specification, but it was unclear if these effects extended to postnatal hematopoiesis. We used Cdh5Cre or VavCre models to conditionally ablate Tpm1 in endothelium or hematopoietic cells. Both models produced knockout mice in normal Mendelian ratios with complete Tpm1 ablation in postnatal blood. Endothelial Tpm1 deletion increased hemogenic endothelial cell specification, but did not change hematopoietic progenitor cell production nor adult blood counts. This suggested separate roles for Tpm1 in the embryonic and adult blood systems. GWAS suggested genetic architecture specifically linking decreased TPM1 expression to increased platelet count. We examined platelet lifespan and function to explain these findings. Tpm1KO increased platelet lifespan and diminished adhesion to fibronectin and fibrinogen. Decreased platelet clearance could explain increased platelet count in GWAS. Platelet fibrin binding is necessary for blood clot contraction, which reduces vascular occlusion following initial hemostasis. Tpm1KO reduced clot contraction and enhanced clot formation with worsened vascular occlusion in a ferric chloride-induced stroke model. These findings reveal a new role for Tpm1 in platelet function, offering insight into how cytoskeletal regulation impacts human platelet traits and pointing to novel targets to modify stroke risk and thrombotic disease.

cell biology↗