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Expression and distribution of creatine transporter and creatine kinase (brain isoform) in developing and mature rat cochlear tissues

机译:肌酸转运蛋白和肌酸激酶(脑同种型)在发育中和成熟的大鼠耳蜗组织中的表达和分布

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摘要

Physiological processes in the cochlea associated with sound transduction and maintenance of the unique electrochemical environment are metabolically demanding. Creatine maintains ATP homeostasis by providing high-energy phosphates for ATP regeneration which is catalyzed by creatine kinase (CK). Cellular uptake of creatine requires a specific high affinity sodium- and chloride-dependent creatine transporter (CRT). This study postulates that this CRT is developmentally regulated in the rat cochlea. CRT expression was measured by quantitative real-time RT-PCR and immunohistochemistry in the postnatal (P0–P14) and adult (P22–P56) rat cochlea. The maximum CRT expression was reached at the onset of hearing (P12), and this level was maintained through to adulthood. CRT immunoreactivity was strongest in the sensory inner hair cells, supporting cells and the spiral ganglion neurons. Cochlear distribution of the CK brain isoform (CKB) was also assessed by immunohistochemistry and compared with the distribution of CRT in the developing and adult cochlea. CKB was immunolocalized in the organ of Corti supporting cells, and the lateral wall tissues involved in K+ cycling, including stria vascularis and spiral ligament fibrocytes. Similar to CRT, CKB reached peak expression after the onset of hearing. Differential spatial and temporal expression of CRT and CK in cochlear tissues during development may reflect differential requirements for creatine–phosphocreatine buffering to replenish ATP consumed during energy-dependent metabolic processes, especially around the period when the cochlea becomes responsive to airborne sound.
机译:与声音转导和维持独特的电化学环境有关的耳蜗生理过程在代谢上是需要的。肌酸通过为肌酸激酶(CK)催化的ATP再生提供高能磷酸盐来维持ATP稳态。细胞摄取肌酸需要特定的高亲和力钠和氯依赖性肌酸转运蛋白(CRT)。这项研究假设该CRT在大鼠耳蜗中受到发育调控。通过定量实时RT-PCR和免疫组化方法在出生后(P0–P14)和成年(P22–P56)大鼠耳蜗中测量CRT表达。在听力发作时(P12)达到了最大的CRT表达,这一水平一直持续到成年。在感觉内毛细胞,支持细胞和螺旋神经节神经元中,CRT免疫反应最强。还通过免疫组织化学评估了CK脑同种型(CKB)的耳蜗分布,并将其与发育中和成年耳蜗中CRT的分布进行比较。 CKB被免疫定位在Corti支持细胞的器官中,而参与K +循环的侧壁组织包括血管纹和螺旋韧带纤维细胞。与CRT相似,CKB在听力发作后达到高峰表达。在发育过程中,耳蜗组织中CRT和CK的时空差异表达可能反映了肌酸-磷酸肌酸缓冲液的不同需求,以补充能量依赖性代谢过程中消耗的ATP,尤其是在耳蜗对空气传播的声音响应期间。

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  • 来源
    《Histochemistry and Cell Biology》 |2012年第5期|p.599-613|共15页
  • 作者单位

    Translational Neuroscience Facility, School of Medical Sciences, University of New South Wales, Sydney, Australia;

    Department of Physiology, Faculty of Medical and Health Sciences, University of Auckland, Auckland, New Zealand;

    Division of Neurology, Cincinnati Children’s Research Foundation and Department of Pediatrics, University of Cincinnati College of Medicine, Cincinnati, OH, USA;

    Department of Physiology, Faculty of Medical and Health Sciences, University of Auckland, Auckland, New Zealand;

    Department of Physiology, Faculty of Medical and Health Sciences, University of Auckland, Auckland, New Zealand;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Cochlea; Creatine kinase; Creatine transport; Development; Energy metabolism;

    机译:耳蜗;肌酸激酶;肌酸转运;发育;能量代谢;

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