TY - JOUR
T1 - TFB2M and POLRMT are essential for mammalian mitochondrial DNA replication
AU - Inatomi, Teppei
AU - Matsuda, Shigeru
AU - Ishiuchi, Takashi
AU - Do, Yura
AU - Nakayama, Masunari
AU - Abe, Shusaku
AU - Kasho, Kazutoshi
AU - Wanrooij, Sjoerd
AU - Nakada, Kazuto
AU - Ichiyanagi, Kenji
AU - Sasaki, Hiroyuki
AU - Yasukawa, Takehiro
AU - Kang, Dongchon
N1 - Funding Information:
We are very grateful for Ms. Madoka Nonaka (Kyushu Univ.) for technical assistance, Dr. Toyoaki Natsume and Prof. Masato Kanemaki (National Institute of Genetics, Japan) for helpful advice, and Dr. Toshiki Tsurimoto (Kyushu University emeritus professor) for valuable discussion. This work was supported in part by Grants-in-Aid for Scientific Research from Japan Society for the Promotion of Science [JSPS KAKENHI grant numbers: JP19H05756 to T.I., JP17K07504 to T.Y., JP17H01550 to K.D.] and the Cooperative Research Project Program of the Medical Institute of Bioregulation, Kyushu University to T.Y.
Publisher Copyright:
© 2021 Elsevier B.V.
PY - 2022/1
Y1 - 2022/1
N2 - Two classes of replication intermediates have been observed from mitochondrial DNA (mtDNA) in many mammalian tissue and cells with two-dimensional agarose gel electrophoresis. One is assigned to leading-strand synthesis in the absence of synchronous lagging-strand synthesis (strand-asynchronous replication), and the other has properties of coupled leading- and lagging-strand synthesis (strand-coupled replication). While strand-asynchronous replication is primed by long noncoding RNA synthesized from a defined transcription initiation site, little is known about the commencement of strand-coupled replication. To investigate it, we attempted to abolish strand-asynchronous replication in cultured human cybrid cells by knocking out the components of the transcription initiation complexes, mitochondrial transcription factor B2 (TFB2M/mtTFB2) and mitochondrial RNA polymerase (POLRMT/mtRNAP). Unexpectedly, removal of either protein resulted in complete mtDNA loss, demonstrating for the first time that TFB2M and POLRMT are indispensable for the maintenance of human mtDNA. Moreover, a lack of TFB2M could not be compensated for by mitochondrial transcription factor B1 (TFB1M/mtTFB1). These findings indicate that TFB2M and POLRMT are crucial for the priming of not only strand-asynchronous but also strand-coupled replication, providing deeper insights into the molecular basis of mtDNA replication initiation.
AB - Two classes of replication intermediates have been observed from mitochondrial DNA (mtDNA) in many mammalian tissue and cells with two-dimensional agarose gel electrophoresis. One is assigned to leading-strand synthesis in the absence of synchronous lagging-strand synthesis (strand-asynchronous replication), and the other has properties of coupled leading- and lagging-strand synthesis (strand-coupled replication). While strand-asynchronous replication is primed by long noncoding RNA synthesized from a defined transcription initiation site, little is known about the commencement of strand-coupled replication. To investigate it, we attempted to abolish strand-asynchronous replication in cultured human cybrid cells by knocking out the components of the transcription initiation complexes, mitochondrial transcription factor B2 (TFB2M/mtTFB2) and mitochondrial RNA polymerase (POLRMT/mtRNAP). Unexpectedly, removal of either protein resulted in complete mtDNA loss, demonstrating for the first time that TFB2M and POLRMT are indispensable for the maintenance of human mtDNA. Moreover, a lack of TFB2M could not be compensated for by mitochondrial transcription factor B1 (TFB1M/mtTFB1). These findings indicate that TFB2M and POLRMT are crucial for the priming of not only strand-asynchronous but also strand-coupled replication, providing deeper insights into the molecular basis of mtDNA replication initiation.
KW - Mitochondrial DNA
KW - Mitochondrial RNA polymerase
KW - Mitochondrial transcription factor
KW - Replication initiation
KW - Strand-asynchronous replication
KW - Strand-coupled replication
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U2 - 10.1016/j.bbamcr.2021.119167
DO - 10.1016/j.bbamcr.2021.119167
M3 - Article
C2 - 34744028
AN - SCOPUS:85118485501
SN - 0167-4889
VL - 1869
JO - Biochimica et Biophysica Acta - Molecular Cell Research
JF - Biochimica et Biophysica Acta - Molecular Cell Research
IS - 1
M1 - 119167
ER -