参考资料
[1]mok, b. y.; de moraes, m. h.; zeng, j.; bosch, d. e.; kotrys, a. v.; raguram, a.; hsu, f.; radey, m. c.; peterson, s. b.; mootha, v. k.; mougous, j. d.; liu, d. r., a bacterial cytidine deaminase toxin enables crispr-free mitochondrial base editing. nature 2020. https://www.nature.com/articles/s41586-020-2477-4
[2]https://www.sciencemag.org/news/2020/07/new-method-edit-cell-s-powerhouse-dna-could-help-study-variety-genetic-diseases
[3]yeh, w.-h.; chiang, h.; rees, h. a.; edge, a. s. b.; liu, d. r., in vivo base editing of post-mitotic sensory cells. nature communications 2018, 9 (1), 2184.
[4]shen, m. w.; arbab, m.; hsu, j. y.; worstell, d.; culbertson, s. j.; krabbe, o.; cassa, c. a.; liu, d. r.; gifford, d. k.; sherwood, r. i., predictable and precise template-free crispr editing of pathogenic variants. nature 2018, 563 (7733), 646-651.
[5]the first precision gene editing tool for mitochondrial dna. https://www.lifespan.io/news/the-first-precision-gene-editing-tool-for-mitochondrial-dna/
[6]new molecular tool precisely edits mitochondrial dna. https://www.sciencedaily.com/releases/2020/07/200708121436.htm
[7]scientists make precise gene edits to mitochondrial dna for first time. https://www.nature.com/articles/d41586-020-02054-5