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Hovde, M. J.

Publications and source records attributed to Hovde, M. J..

2 recordsLinked to original sources

Inhibition of Acyl-CoA: Cholesterol Acyltransferase 1 Promotes Shedding of Soluble TREM2 and LRP1-Dependent Phagocytosis of Amyloid β Protein in Microglia

Lipid regulation plays a major role in the pathogenesis of Alzheimers disease (AD). In AD patients and transgenic mice, microglia exhibit increased expression of SOAT1, encoding Acyl-CoA: Cholesterol Acyltransferase 1 (ACAT1), which catalyzes the production of cholesteryl esters in lipid droplets. ACAT1 Inhibition has been reported to reduce {beta}-amyloid pathology. However, the molecular mechanism underlying this effect remains unknown. Here, we show ACAT1 inhibition in mouse and human iPSC- derived microglia upregulates LRP1 levels and shedding of soluble TREM2 (sTREM2) owing to enhanced cleavage of TREM2 by ADAM10/17. Knocking out TREM2 or preventing sTREM2 release abrogated the ability of ACAT1 inhibition to enhance microglial uptake of amyloid {beta} (A{beta}). This could be rescued by the addition of recombinant sTREM2, but only in the presence of LRP1. Collectively, these data indicate ACAT1 inhibition increases microglial uptake of A{beta} in a sTREM2- and LRP1-dependent manner suggesting new avenues for treating and preventing AD.

cell biology↗

Transient Suppression of Dopamine Transporter Palmitoylation by Methamphetamine: Implications for Transport Regulation

The dopamine transporter (DAT) exerts temporal and spatial control over dopaminergic neurotransmission through reuptake of extracellular dopamine (DA). The functional capacity of DAT is under the control of signaling inputs and post-translational modifications that confer acute presynaptic regulation of reuptake in response to physiological needs, and dysregulation of these processes may contribute to DA imbalances in mood disorders and drug addiction. A key modification of DAT is palmitoylation, a lipid adduction that enhances transport velocity, is suppressed by protein kinase C, and opposes protein kinase C-mediated down-regulation. Here we now show in rat striatum and heterologous cells that transporter palmitoylation is also linked to methamphetamine (METH), undergoing rapid and transient reductions in response to the drug. The time course and other characteristics of palmitoylation reduction parallel those of METH-induced transport down-regulation, and a palmitoylation-deficient DAT mutant shows enhanced down-regulation to METH, supporting a mechanistic link between reduction of the modification and reduced reuptake activity. Recovery rates differed, however, with palmitoylation returning to starting levels more rapidly than reuptake, indicating that down-regulation mechanisms remain engaged with transporters that have undergone repalmitoylation. These results support palmitoylation as a rapid response mechanism that modulates DAT entry into METH-induced down-regulation states and suggest a broader role for the modification in control of reuptake in additional physiological and pathophysiological conditions.

neuroscience↗