Garrido-Gil P, Fernandez-Rodríguez P, Rodríguez-Pallares J, Labandeira-Garcia Jose L
Laboratory of Neuroanatomy and Experimental Neurology, Department of Morphological Sciences, CIMUS, University of Santiago de Compostela, 15782, Santiago De Compostela, Spain.
Research Center on Neurodegenerative Diseases (CIBERNED), Madrid, Spain.
Histochem Cell Biol. 2017 Sep;148(3):299-311. doi: 10.1007/s00418-017-1585-1. Epub 2017 May 31.
Laser capture microdissection (LCM) allows the isolation of specific cell populations from complex tissues that can be then used for gene expression studies. However, there are no reproducible protocols to study RNA in the brain and, particularly, in the substantia nigra. RNA is a very labile biomolecule that is easily degraded during manipulation. LCM studies use low amounts of material and special precautions must be taken to preserve RNA yield and integrity, which are decisive for PCR analysis. The RNA yield and/or integrity can be affected negatively by tissue manipulation, LCM process and RNA extraction. We have optimized these three critical steps using nigral tissue sections, and developed a LCM protocol to obtain high-quality RNA for gene expression analysis. The optimal LCM protocol requires the use of 20 µm-thick tissue sections mounted on glass slides and processed for rapid tyrosine hydroxylase immunofluorescence. Additionally, a total microdissected tissue area of 1 mm and a column-based RNA extraction method were used to obtain a high RNA yield and integrity. In the rat substantia nigra, we demonstrated the expression of RNA for the angiotensin type 1 and type 2 receptors using this optimized LCM protocol. In conclusion, the LCM protocol reported here can be used to study the expression of both scarcely or abundantly expressed genes in the different brain regions of mammals under both physiological and pathological conditions.
激光捕获显微切割(LCM)可从复杂组织中分离出特定细胞群体,随后可用于基因表达研究。然而,目前尚无用于研究大脑尤其是黑质中RNA的可重复方案。RNA是一种非常不稳定的生物分子,在操作过程中很容易降解。LCM研究使用的材料量较少,因此必须采取特殊预防措施以保存RNA产量和完整性,这对于PCR分析至关重要。RNA产量和/或完整性可能会受到组织操作、LCM过程和RNA提取的负面影响。我们使用黑质组织切片对这三个关键步骤进行了优化,并开发了一种LCM方案以获得用于基因表达分析的高质量RNA。最佳LCM方案要求使用安装在载玻片上的20微米厚组织切片,并进行快速酪氨酸羟化酶免疫荧光处理。此外,使用1平方毫米的总显微切割组织面积和基于柱的RNA提取方法来获得高RNA产量和完整性。在大鼠黑质中,我们使用这种优化的LCM方案证明了1型和2型血管紧张素受体RNA的表达。总之,本文报道的LCM方案可用于研究生理和病理条件下哺乳动物不同脑区中低表达或高表达基因的表达。