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瞬时受体电位通道M型3(TRPML3)中的变色素蹒跚(Va)耳聋突变会产生组成型内向整流电流并导致细胞变性。

The varitint-waddler (Va) deafness mutation in TRPML3 generates constitutive, inward rectifying currents and causes cell degeneration.

作者信息

Nagata Keiichi, Zheng Lili, Madathany Thomas, Castiglioni Andrew J, Bartles James R, García-Añoveros Jaime

机构信息

Department of Anesthesiology, Northwestern University Feinberg School of Medicine, Chicago, IL 60611, USA.

出版信息

Proc Natl Acad Sci U S A. 2008 Jan 8;105(1):353-8. doi: 10.1073/pnas.0707963105. Epub 2007 Dec 27.

Abstract

Varitint-waddler (Va and Va(J)) mice are deaf and have vestibular impairment, with inner ear defects that include the degeneration and loss of sensory hair cells. The semidominant Va mutation results in an alanine-to-proline substitution at residue 419 (A419P) of the presumed ion channel TRPML3. Another allele, Va(J), has the A419P mutation in addition to an I362T mutation. We found that hair cells, marginal cells of stria vascularis, and other cells lining the cochlear and vestibular endolymphatic compartments express TRPML3. When heterologously expressed in LLC-PK1-CL4 epithelial cells, a culture model for hair cells, TRPML3 accumulated in lysosomes and in espin-enlarged microvilli that resemble stereocilia. We also demonstrated that wild-type TRPML3 forms channels that are blocked by Gd(3+), have a conductance of 50-70 pS and, like many other TRP channels, open at very positive potentials and thus rectify outwardly. In addition to this outward current, TRPML3(419P) and (I362T+A419P) generated a constitutive inwardly rectifying current that suggests a sensitivity to hyperpolarizing negative potentials and that depolarized the cells. Cells expressing TRPML3(A419P) or (I362T+A419P), but not wild-type TRPML3, died and were extruded from the epithelium in a manner reminiscent of degenerating hair cells in Va mice. The increased open probability of TRPML3(A419P) and (I362T+A419P) at physiological potentials likely underlies hair cell degeneration and deafness in Va and Va(J) mice.

摘要

变色素蹒跚(Va和Va(J))小鼠耳聋且有前庭功能障碍,内耳缺陷包括感觉毛细胞的退化和丧失。半显性的Va突变导致假定的离子通道TRPML3第419位残基(A419P)处的丙氨酸被脯氨酸取代。另一个等位基因Va(J)除了I362T突变外,还有A419P突变。我们发现毛细胞、血管纹边缘细胞以及耳蜗和前庭内淋巴腔的其他衬里细胞表达TRPML3。当在LLC-PK1-CL4上皮细胞(一种毛细胞培养模型)中异源表达时,TRPML3积聚在溶酶体和类似静纤毛的espin扩大微绒毛中。我们还证明野生型TRPML3形成的通道被Gd(3+)阻断,电导为50 - 70 pS,并且像许多其他TRP通道一样,在非常正的电位下开放,因此向外整流。除了这种外向电流外,TRPML3(419P)和(I362T + A419P)产生了一种组成型内向整流电流,这表明对超极化负电位敏感并使细胞去极化。表达TRPML3(A419P)或(I362T + A419P)而非野生型TRPML3的细胞死亡并以类似于Va小鼠中退化毛细胞的方式从上皮中挤出。TRPML3(A419P)和(I362T + A419P)在生理电位下增加的开放概率可能是Va和Va(J)小鼠毛细胞退化和耳聋的基础。

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