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Endotoxin-Induced Proteolytic Reduction in Hepatic Growth Hormone (GH) Receptor: A Novel Mechanism for GH Insensitivity

机译:内毒素诱导的肝生长激素(GH)受体的蛋白水解还原:生长激素不敏感性的新机制。

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摘要

GH is an important anabolic hormone. We previously demonstrated in cell culture that the cell surface GH receptor (GHR) is susceptible to inducible metalloproteolytic cleavage that yields the shed receptor extracellular domain (called GH binding protein) and renders the cells desensitized to subsequent GH stimulation. Sepsis and inflammatory states are associated with hepatic desensitization to GH, although disparate mechanisms have been postulated in various animal models. Using C3H/HeJ mice, we now demonstrate that administration of lipopolysaccharide (LPS) causes marked hepatic desensitization to GH, assessed by monitoring signal transducer and activator of transcription 5 tyrosine phosphorylation and nuclear accumulation and with a novel noninvasive bioluminescence imaging system to track in vivo hepatic GH signaling serially in individual mice. This endotoxin-induced desensitization was accompanied by marked loss of hepatic GHR, which was not explained by changes in GHR mRNA abundance. Furthermore, we observe that LPS causes GH-binding protein shedding of a hepatically expressed wild-type GHR but not a GHR with a mutation in the metalloprotease cleavage site. These data suggest that in this model system, LPS-induced desensitization to GH is associated with proteolytic GHR cleavage. These data are the first to demonstrate inducible in vivo GHR proteolysis and suggest this is a mechanism to regulate GH sensitivity and its anabolic effects during sepsis or inflammation.
机译:GH是一种重要的合成代谢激素。我们先前在细胞培养中证明,细胞表面GH受体(GHR)易受诱导的金属水解裂解,产生裂解的受体胞外域(称为GH结合蛋白),并使细胞对随后的GH刺激不敏感。败血症和炎性状态与肝对GH脱敏有关,尽管在各种动物模型中都假定了不同的机制。使用C3H / HeJ小鼠,我们现在证明脂多糖(LPS)的给药可引起肝脏对GH的明显脱敏,通过监测信号转导子和转录激活因子5酪氨酸的磷酸化和核蓄积以及新型的非侵入性生物发光成像系统对体内进行跟踪来评估肝GH在单个小鼠中连续发出信号。这种内毒素引起的脱敏伴随着肝GHR的明显丧失,这不能通过GHR mRNA丰度的变化来解释。此外,我们观察到,LPS会引起肝脏表达的野生型GHR的GH结合蛋白脱落,但不会引起金属蛋白酶切割位点突变的GHR。这些数据表明,在该模型系统中,LPS诱导的GH脱敏与蛋白水解GHR裂解有关。这些数据是第一个证明可诱导的体内GHR蛋白水解的数据,并表明这是在败血症或炎症过程中调节GH敏感性及其合成代谢作用的机制。

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