Population heterogeneity of higher-plant mitochondria in structure and function

被引:33
作者
Dai, H
Lo, YS
Jane, WN
Lee, LW
Chiang, KS
机构
[1] Univ Chicago, Cummings Life Sci Ctr, Dept Mol Genet & Cell Biol, Chicago, IL 60637 USA
[2] Acad Sinica, Inst Bot, Taipei, Taiwan
关键词
mitochondria population heterogeneity; structure change; higher-plant mitochondria;
D O I
10.1016/S0171-9335(98)80062-9
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Mitochondria of rapidly developing mungbean seedlings were fractionated into four populations: two density classes, each from a 1500S and a 150S pellet. Each of the four populations exhibited cytochrome c oxidase (COX) activity and contained mitochondrial DNA and cardiolipin; plastid and glyoxysome content were found to be relatively low Five mitochondrial membrane proteins, COXII/III, ATPase alpha/beta and porin, and a matrix enzyme, manganese superoxide dismutase (MnSOD), were detected by immunoblots in all four populations. Another matrix enzyme, pyruvate dehydrogenase was detected only in the two respiratory-competent 1500S populations. The two 150S populations contained a previously unidentified organelle that lacked demonstrable respiratory capability. This organelle, which we have tentatively referred to as "slow-sedimenting (ss-) mitochondrion", was small in size (below light-optics resolution, 70-300 nm, majority less than or equal to 200 nm) and possessed a peculiar looking boundary membrane, ribosomes, and an occasional prominent electron-dense spot. Characteristically, ss-mitochondria were almost always in contact with a filament aligned membrane like structure of varying length. Cristae structure, while undetected in small ss-mitochondria, appeared in larger individuals. Typical mitochondria were found in the denser 1500S population, while the lighter 1500S population consisted of 300-800 nm mitochondria exhibiting a varying degree of size-dependent inner membrane folding. Using electron microscopy (EM) immunolocalization and serial sectioning, we have identified in situ organelles resembling in size and in fine structure the ss-mitochondria, which also exhibit a size-dependent folding of the inner membrane. These results suggest that small ss-mitochondria may undergo a progressive development in situ. Taken together, our findings demonstrate the existence of a pattern of structure-function-coordinated gross heterogeneity among mitochondria. This pattern of mitochondrial heterogeneity, characterized both in isolated mitochondria and in situ, implies that small ss-mitochondria may represent a type of "nascent mitochondria" derived from a yet unidentified mitochondria-propagation mode operating during rapid seedling growth. Mitochondrial division by binary fission, characterized by the appearance of dumbbell-shaped intermediates, was also detected.
引用
收藏
页码:198 / 209
页数:12
相关论文
共 56 条
[1]  
AKAZAWA T, 1956, BIOCHEM J, V67, P115
[2]   DIVISION OF PHUSARUM MITOCHONDRIA DURING STARVATION [J].
BARANOWSKI, Z ;
HREBENDA, B ;
CIESLAWSKA, M ;
BEYLINA, SI .
CELL BIOLOGY INTERNATIONAL REPORTS, 1991, 15 (03) :197-204
[3]   DYNAMICS OF MITOCHONDRIA IN LIVING CELLS - SHAPE CHANGES, DISLOCATIONS, FUSION, AND FISSION OF MITOCHONDRIA [J].
BEREITERHAHN, J ;
VOTH, M .
MICROSCOPY RESEARCH AND TECHNIQUE, 1994, 27 (03) :198-219
[4]   BIOGENESIS OF MITOCHONDRIA IN GERMINATING PEANUT COTYLEDONS .2. CHANGES IN CYTOCHROMES AND MITOCHONDRIAL DNA [J].
BREIDENBACH, RW ;
CASTELFRANCO, P ;
CRIDDLE, RS .
PLANT PHYSIOLOGY, 1967, 42 (08) :1035-+
[5]  
CASCARANO J, 1995, HEPATOLOGY, V22, P837, DOI 10.1002/hep.1840220323
[6]   EFFECTS OF ANOXIA ON MITOCHONDRIAL BIOGENESIS IN RICE SHOOTS - MODIFICATION OF IN ORGANELLO TRANSLATION CHARACTERISTICS [J].
COUEE, I ;
DEFONTAINE, S ;
CARDE, JP ;
PRADET, A .
PLANT PHYSIOLOGY, 1992, 98 (02) :411-421
[7]   PROTEIN-SYNTHESIS IN ISOLATED-MITOCHONDRIA OF RICE (ORYZA-SATIVA L) SEEDLINGS [J].
DAI, H ;
LO, YS ;
WU, CY ;
TSOU, CL ;
HSU, GS ;
CHERN, CG ;
RUDDAT, M ;
CHIANG, KS .
PLANT PHYSIOLOGY, 1991, 96 (01) :319-323
[8]  
DARLEYUSMAR VM, 1987, MITOCHONDRIA PRACTIC, P113
[9]  
DUNCAN CJ, 1988, DIVISION SEGREGATION, P95
[10]  
DUNCAN CJ, 1981, J BIOENERG BIOMEMBR, V12, P13