Defective oxidative phosphorylation in thyroid oncocytic carcinoma is associated with pathogenic mitochondrial DNA mutations affecting complexes I and III

被引:178
作者
Bonora, Elena
Porcelli, Anna Maria
Gasparre, Giuseppe
Biondi, Annalisa
Ghelli, Anna
Carelli, Valerio
Baracca, Alessandra
Tallini, Giovanni
Martinuzzi, Andrea
Lenaz, Giorgio
Rugolo, Michela
Romeo, Giovanni
机构
[1] Policlin Univ S Orsola Malpighi, Dipartimento Med Interna, Unita Genet Med, I-40138 Bologna, Italy
[2] Univ Bologna, Dipartimento Biol Evoluz Sperimentale, Bologna, Italy
[3] Univ Bologna, Dipartimento Biochim, Bologna, Italy
[4] Univ Bologna, Dipartimento Sci Neurol, Bologna, Italy
[5] Univ Bologna, Dipartimento Anat Patol, Bologna, Italy
[6] Ist Sci E Medea, Veneto, Italy
关键词
D O I
10.1158/0008-5472.CAN-06-0171
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Oncocytic tumors are characterized by cells with an aberrant accumulation of mitochondria. To assess mitochondrial function in neoplastic oncocytic cells, we studied the thyroid oncocytic cell line XTC.UC1 and compared it with other thyroid non-oncocytic cell lines. Only XTC.UC1 cells were unable to survive in galactose, a condition forcing cells to rely solely on mitochondria for energy production. The rate of respiration and mitochondrial ATP synthesis driven by complex I substrates was severely reduced in XTC.UC1 cells. Furthermore, the enzymatic activity of complexes I and III was dramatically decreased in these cells compared with controls, in conjunction with a strongly enhanced production of reactive oxygen species. Osteosarcoma-derived transmitochondrial cell hybrids (cybrids) carrying XTC.UC1 mitochondrial DNA (mtDNA) were generated to discriminate whether the energetic failure depended on mitochondrial or nuclear DNA mutations. In galactose medium, XTC.UC1 cybrid clones showed reduced viability and ATP content, similarly to the parental XTC.UC1, clearly pointing to the existence of mtDNA alterations. Sequencing of XTC.UC1 mtDNA identified a frameshift mutation in ND1 and a nonconservative substitution in cytochrome b, two mutations with a clear pathogenic potential. In conclusion, this is the first demonstration that mitochondrial dysfunction of XTC.UC1 is due to a combined complex I/III defect associated with mtDNA mutations, as proven by the transfer of the defective energetic phenotype with the mitochondrial genome into the cybrids.
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页码:6087 / 6096
页数:10
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