Responses of muscle mass, strength and gene transcripts to long-term heat stress in healthy human subjects
EUROPEAN JOURNAL OF APPLIED PHYSIOLOGY
Authors: Goto, Katsumasa; Oda, Hideshi; Kondo, Hidehiko; Igaki, Michihito; Suzuki, Atsushi; Tsuchiya, Shuichi; Murase, Takatoshi; Hase, Tadashi; Fujiya, Hiroto; Matsumoto, Ichiro; Naito, Hisashi; Sugiura, Takao; Ohira, Yoshinobu; Yoshioka, Toshitada
Abstract
The present study was performed to investigate the effects of long-term heat stress on mass, strength and gene expression profile of human skeletal muscles without exercise training. Eight healthy men were subjected to 10-week application of heat stress, which was performed for the quadriceps muscles for 8 h/day and 4 days/week by using a heat- and steam-generating sheet. Maximum isometric force during knee extension of the heated leg significantly increased after heat stress (similar to 5.8%, P < 0.05). Mean cross-sectional areas (CSAs) of vastus lateralis (VL, similar to 2.7%) and rectus femoris (similar to 6.1%) muscles, as well as fiber CSA (8.3%) in VL, in the heated leg were also significantly increased (P < 0.05). Statistical analysis of microarrays (SAM) revealed that 10 weeks of heat stress increased the transcript level of 925 genes and decreased that of 1,300 genes, and gene function clustering analysis (Database for Annotation, Visualization and Integrated Discovery: DAVID) showed that these regulated transcripts stemmed from diverse functional categories. Transcript level of ubiquinol-cytochrome c reductase binding protein (UQCRB) was significantly increased by 10 weeks of heat stress (similar to 3.0 folds). UQCRB is classified as one of the oxidative phosphorylation-associated genes, suggesting that heat stress can stimulate ATP synthesis. These results suggested that long-term application of heat stress could be effective in increasing the muscle strength associated with hypertrophy without exercise training.
Nuclear gene mutations as the cause of mitochondrial complex III deficiency
FRONTIERS IN GENETICS
Authors: Fernandez-Vizarra, Erika; Zeviani, Massimo
Abstract
Complex III (CIII) deficiency is one of the least common oxidative phosphorylation defects associated to mitochondrial disease. CIII constitutes the center of the mitochondrial respiratory chain, as well as a crossroad for several other metabolic pathways. For more than 10 years, of all the potential candidate genes encoding structural subunits and assembly factors, only three were known to be associated to CIII defects in human pathology. Thus, leaving many of these cases unresolved. These first identified genes were MT-CYB, the only CIII subunit encoded in the mitochondrial DNA; BCS1L, encoding an assembly factor, and UQCRB, a nuclear-encoded structural subunit. Nowadays, thanks to the fast progress that has taken place in the last 3-4 years, pathological changes in seven more genes are known to be associated to these conditions. This review will focus on the strategies that have permitted the latest discovery of mutations in factors that are necessary for a correct CIII assembly and activity, in relation with their function. In addition, new data further establishing the molecular role of LYRM7/MZM1L as a chaperone involved in CIII biogenesis are provided.