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首页> 外文期刊>EMBO reports >The E3 ligase Highwire promotes synaptic transmission by targeting the NAD-synthesizing enzyme dNmnat
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The E3 ligase Highwire promotes synaptic transmission by targeting the NAD-synthesizing enzyme dNmnat

机译:通过靶向NAD合成酶DNMNAT来促进E3连接酶高次脉冲率

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The ubiquitin ligase Highwire restrains synaptic growth and promotes evoked neurotransmission at NMJ synapses in Drosophila. Highwire regulates synaptic morphology by downregulating the MAP3K Wallenda, but excess Wallenda signaling does not account for the decreased presynaptic release observed in highwire mutants. Hence, Highwire likely has a second substrate that inhibits neurotransmission. Highwire targets the NAD(+) biosynthetic and axoprotective enzyme dNmnat to regulate axonal injury responses. dNmnat localizes to synapses and interacts with the active zone protein Bruchpilot, leading us to hypothesize that Highwire promotes evoked release by downregulating dNmnat. Here, we show that excess dNmnat is necessary in highwire mutants and sufficient in wild-type larvae to reduce quantal content, likely via disruption of active zone ultrastructure. Catalytically active dNmnat is required to drive defects in evoked release, and depletion of a second NAD(+) synthesizing enzyme is sufficient to suppress these defects in highwire mutants, suggesting that excess NAD(+) biosynthesis is the mechanism inhibiting neurotransmission. Thus, Highwire downregulates dNmnat to promote evoked synaptic release, suggesting that Highwire balances the axoprotective and synapse-inhibitory functions of dNmnat.
机译:泛素连接酶的高温抑制突触生长,并促进果蝇在果蝇的NMJ突触中诱发神经递血。 Highwire通过下调Map3k Wallenda来调节突触形态,但是过量的Wallenda信号传导不考虑在高温突变体中观察到的突触前释放减少。因此,高温可能具有抑制神经递质的第二个底物。高温靶向NAD(+)生物合成和Axproprootective酶DNMNAT来调节轴突损伤响应。 DNMNAT定位于突触和与有源区蛋白质Bruchpilot相互作用,导致我们假设高温通过下调DNMNAT促进唤起唤醒。在这里,我们表明,在高温突变体中具有过量的DNMNAT,并且足以在野生型幼虫中足以减少量化含量,可能是通过干扰有源区超越。催化活性DNMNAT是在诱发的释放中驱动缺陷所需的,并且第二个NAD(+)合成酶的耗尽足以抑制高温突变体中的这些缺陷,表明过量的NAD(+)生物合成是抑制神经递质的机制。因此,高温下调DNMNAT以促进诱发的突触释放,表明高温平衡DNMNAT的ACHAPROROCTECTIVE和Synapse抑制功能。

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