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一个组织映射的墨西哥钝口螈从头转录组有助于鉴定肢体再生因子。

A Tissue-Mapped Axolotl De Novo Transcriptome Enables Identification of Limb Regeneration Factors.

作者信息

Bryant Donald M, Johnson Kimberly, DiTommaso Tia, Tickle Timothy, Couger Matthew Brian, Payzin-Dogru Duygu, Lee Tae J, Leigh Nicholas D, Kuo Tzu-Hsing, Davis Francis G, Bateman Joel, Bryant Sevara, Guzikowski Anna R, Tsai Stephanie L, Coyne Steven, Ye William W, Freeman Robert M, Peshkin Leonid, Tabin Clifford J, Regev Aviv, Haas Brian J, Whited Jessica L

机构信息

Harvard Medical School, Harvard Stem Cell Institute, and Department of Orthopedic Surgery, Brigham & Women's Hospital, 65 Landsdowne St., Cambridge, MA 02139, USA.

Broad Institute of MIT and Harvard and Klarman Cell Observatory, 7 Cambridge Center, Cambridge, MA 02142, USA.

出版信息

Cell Rep. 2017 Jan 17;18(3):762-776. doi: 10.1016/j.celrep.2016.12.063.

Abstract

Mammals have extremely limited regenerative capabilities; however, axolotls are profoundly regenerative and can replace entire limbs. The mechanisms underlying limb regeneration remain poorly understood, partly because the enormous and incompletely sequenced genomes of axolotls have hindered the study of genes facilitating regeneration. We assembled and annotated a de novo transcriptome using RNA-sequencing profiles for a broad spectrum of tissues that is estimated to have near-complete sequence information for 88% of axolotl genes. We devised expression analyses that identified the axolotl orthologs of cirbp and kazald1 as highly expressed and enriched in blastemas. Using morpholino anti-sense oligonucleotides, we find evidence that cirbp plays a cytoprotective role during limb regeneration whereas manipulation of kazald1 expression disrupts regeneration. Our transcriptome and annotation resources greatly complement previous transcriptomic studies and will be a valuable resource for future research in regenerative biology.

摘要

哺乳动物的再生能力极其有限;然而,蝾螈具有很强的再生能力,能够再生整个肢体。肢体再生的潜在机制仍知之甚少,部分原因是蝾螈庞大且未完全测序的基因组阻碍了对促进再生的基因的研究。我们利用广泛组织的RNA测序图谱组装并注释了一个从头转录组,估计该转录组包含蝾螈88%基因的近乎完整的序列信息。我们设计了表达分析方法,确定cirbp和kazald1的蝾螈直系同源基因在芽基中高表达且富集。使用吗啉代反义寡核苷酸,我们发现有证据表明cirbp在肢体再生过程中发挥细胞保护作用,而操纵kazald1的表达会破坏再生。我们的转录组和注释资源极大地补充了以前的转录组学研究,将成为再生生物学未来研究的宝贵资源。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0865/5419050/05a1d9756880/nihms843166f1.jpg

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