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Mackenzie, S. J.

Publications and source records attributed to Mackenzie, S. J..

2 recordsLinked to original sources

SEZ6L2 Loss Disrupts Motor Coordination, Cognitive Function, and Synaptic Connectivity

The SEZ6 family, composed of SEZ6, SEZ6L, and SEZ6L2, plays essential roles in neurodevelopment, synaptic organization, and complement regulation. However, the specific contribution of SEZ6L2 to brain function remains largely unexplored. In this study, we provide the first comprehensive behavioral and neurobiological characterization of Sez6l2 knockout (KO) mice and directly compare their phenotype with Sez6 triple knockout (TKO) mice, which lack all three Sez6 family genes. Sez6l2 KO mice exhibit impairments across multiple behavioral domains, including motor coordination, gait, sociability, sensory processing, and goal-directed repetitive behaviors. Several phenotypes, particularly motor deficits, worsen with age. Male Sez6l2 KO mice also demonstrate enhanced fear learning and increased prepulse inhibition, revealing sex-specific alterations in sensorimotor gating. At the synaptic level, Sez6l2 KO mice show reduced dendritic spine length and decreased expression of key postsynaptic proteins suggesting impaired excitatory synaptic connectivity. These structural and molecular abnormalities likely contribute to the observed behavioral deficits. In comparison, Sez6 TKO mice display more severe impairments across most measures. Together, these findings establish SEZ6L2 as a critical and non-redundant regulator of motor, cognitive, and synaptic function and provide mechanistic insight into how dysfunction within the SEZ6 family may contribute to neurodevelopmental and neurodegenerative disorders.

neuroscience↗

Haems relevance genuine? Re-visiting the roles of TANGO2 homologues including HRG-9 and HRG-10 in C. elegans

Mutations in the TANGO2 gene are associated with a severe neurometabolic disorder in humans, often presenting with life-threatening metabolic crisis. However, the function of TANGO2 protein remains unknown. It has recently been proposed that TANGO2 transports heme within and between cells, from areas with high heme concentrations to those with lower concentrations. Here, we demonstrate that prior heme-related observations in Caenorhabditis elegans lacking TANGO2 homologs HRG-9 and HRG-10 may be better explained by a previously unreported metabolic phenotype, characterized by reduced feeding, decreased lifespan and brood sizes, and poor motility. We also show that several genes not implicated in heme transport are upregulated in the low heme state and conversely demonstrate that hrg-9 in particular is highly responsive to oxidative stress, independent of heme status. Collectively, these data implicate bioenergetic failure and oxidative stress as potential factors in the pathophysiology of TANGO2 deficiency, in alignment with observations from human patients. Our group performed several experiments in yeast and zebrafish deficient in TANGO2 homologs and was unable to replicate prior findings from these models. Overall, we believe there is insufficient evidence to support heme transport as the primary function for TANGO2. Impact statementCross-species examination of TANGO2 homologs demonstrates that phenotypes previously attributed to altered heme trafficking may instead reflect broader disturbances in mitochondrial function and cellular homeostasis.

cell biology↗