\[1\]Dewey R E, Levings C S,Timothy D H. Novel recombinations in the maize mitochondrial genome produce a unique transcriptional unit in the texas malesterile cytoplasm. Cell, 1986, 44(3): 439449.\[2\]Laughnan J R,GabayLaughnan S. Cytoplasmic male sterility in maize. Annu Rev Genet, 1983, 17: 2748.\[3\]Hanson M R. Plant mitochondrial mutations and male sterility. Annu Rev Genet, 1991, 25: 461486.\[4\]Peng X, Li F, Li S, et al. Expression of a mitochondrial gene orfH79 from the CMSHongLian rice inhibits Saccharomyces cerevisiae growth and causes excessive ROS accumulation and decrease in ATP. Biotechnol Lett, 2009, 31(3): 409414.\[5\]Fujii S, Yamada M, Fujita M, et al. Cytoplasmicnuclear genomic barriers in rice pollen development revealed by comparison of global gene expression profiles among five independent cytoplasmic male sterile lines. Plant Cell Physiol, 2010, 51(4): 610620.\[6\]Hanson M R, Bentolila S. Interactions of mitochondrial and nuclear genes that affect male gametophyte development. Plant Cell, 2004, 16(Suppl): S154169.\[7\]Peng X, Wang K, Hu C, et al. The mitochondrial gene orfH79 plays a critical role in impairing both male gametophyte development and root growth in CMSHonglian rice. BMC Plant Biol, 2010, 10: 125135.\[8\]Wan C, Li S, Wen L, et al. Damage of oxidative stress on mitochondria during microspores development in Honglian CMS line of rice. Plant Cell Rep, 2007, 26(3): 373382.\[9\]文李, 刘盖, 李绍清, 等. 水稻花粉总蛋白质双向凝胶电泳方法建立及应用. 中国水稻科学, 2007, 21(1):1317.\[10\]Wen L, Liu G, Li S Q, et al. Proteomic analysis of anthers from Honglian cytoplasmic male sterility line rice and its corresponding maintainer and hybrid. Botan Stud, 2007, 48(3): 293309.\[11\]Emanuelsson O, Nielsen H, Brunak S, et al. Predicting subcellular localization of proteins based on their Nterminal amino acid sequence. J Mol Biol, 2000, 340: 783795.\[12\]Nahai K, Horton P. A program for detecting sorting signals in proteins and predicting their subcellular localization. Trends Biochem sci, 1999, 24: 3436.\[13\]Nielsen H, Engelbrecht J, Brunak S, et al. Identification of prokaryotic and eukaryotic signal peptides and prediction of their cleavage sites. Protein Engineer, 1997, 10: 16.\[14\]Emanuelsson O, Nielsen H, von Heijne G. ChloroP, a neural networkbased method for predicting chloroplast transit peptides and their cleavage sites. Protein Sci, 1999(8): 978984.\[15\]Claros M G,Vincens P. Computational method to predict mitochondrially imported proteins and their targeting sequences. Eur J Biochem, 1999, 241: 779786.\[16\]Li X M, Jing R C, Zhu Y L, et al. RFLP analysis of mitochondrial DNAs of Honglian CMS line and fertility line. Heredity (China), 2000, 22(4): 201204.\[17\]Budar F, Touzet P,De Paepe R. The nucleomitochondrial conflict in cytoplasmic male sterilities revisited. Genetica, 2003, 117(1): 316.\[18\]Millar A H. Location, location, location: Surveying the intracellular real estate through proteomics in plants. Funct Plant Biol, 2004, 31(6): 563572.\[19\]Hanson M R,Bentolila S. Interactions of mitochondrial and nuclear genes that affect male gametophyte development. Plant Cell, 2004, 16(Suppl ): S154S169.\[20\]Li S Q, Wan C X, Kong j, et al. Programmed cell death during microgenesis in a Honglian CMS line of rice is correlated with oxidative stress in mitochondria. Funct Plant Biol, 2004, 31(4): 369376.\[21\]Balk J,Leaver C J. The PET1CMS mitochondrial mutation in sunflower is associated with premature programmed cell death and cytochrome c release. Plant Cell, 2001, 13(8): 18031818.\[22\]Leonoudakis D, Conti L R, Anderson S, et al. Protein trafficking and anchoring complexes revealed by proteomic analysis of inward rectifier potassium channel (Kir2.x)associated proteins. J Biol Chem, 2004, 279(21): 2233122346.\[23\]Sze H, Padmanaban S, Cellier F, et al. Expression patterns of a novel AtCHX gene family highlight potential roles in osmotic adjustment and K+ homeostasis in pollen development. Plant Physiol, 2004, 136(1): 25322547.\[24\]Hepler P K, Vidali L,Cheung A Y. Polarized cell growth in higher plants. Annu Rev Cell Dev Biol, 2001, 17: 159187.\[25\]Wang L, Xu Y, Zhang C, et al. OsLIC, a novel CCCHtype ainc finger protein with transcription activation, mediates rice architecture via brassinosteroids signaling. PLoS One, 2008, 3(10): e3521.\[26\]Kim J Y, Kim W Y, Kwak K J, et al. Zinc fingercontaining glycinerich RNAbinding protein in Oryza sativa has an RNA chaperone activity under cold stress conditions. Plant Cell Environ, 2010, 33(5): 759768.\[27\]Deng H Q, Liu H B, Li X H, et al. A CCCHtype zinc finger nucleic acidbinding protein quantitatively confers resistance against rice bacterial blight disease. Plant Physiol, 2012,158:876889.\[28\]Mukhopadhyay A, Vij S,Tyagi A K. Overexpression of a zincfinger protein gene from rice confers tolerance to cold, dehydration, and salt stress in transgenic tobacco. Proc Natl Acad Sci USA, 2004, 101(16): 63096314.\[29\]Huang X Y, Chao D Y, Gao J P, et al. A previously unknown zinc finger protein, DST, regulates drought and salt tolerance in rice via stomatal aperture control. Genes Dev, 2009, 23(15): 18051817.\[30\]Kobayashi A, Sakamoto A, Kubo K, et al. Seven zincfinger transcription factors are expressed sequentially during the development of anthers in petunia. Plant J, 1998, 13(4): 571576.\[31\]Mitsuda N, Hisabori T, Takeyasu K, et al. VOZ; isolation and characterization of novel vascular plant transcription factors with a onezinc finger from Arabidopsis thaliana. Plant Cell Physiol, 2004, 45(7): 845854.\[32\]Li D,Roberts R. WDrepeat proteins: Structure characteristics, biological function, and their involvement in human diseases. Cell Mol Life Sci, 2001, 58(14): 20852097.\[33\]Ang Y S, Tsai S Y, Lee D F, et al. Wdr5 mediates selfrenewal and reprogramming via the embryonic stem cell core transcriptional network. Cell, 2011, 145(2): 183197.\[34\]CohenKatsenelson K, Wasserman T, Khateb S, et al. Docking interactions of the JNK scaffold protein WDR62. Biochem J, 2011, 439(3): 381390.\[35\]van Nocker S,Ludwig P. The WDrepeat protein superfamily in Arabidopsis: Conservation and divergence in structure and function. BMC Genom, 2003, 4(1): 50.\[36\]Gallardo K, Job C, Groot S P, et al. Proteomic analysis of arabidopsis seed germination and priming. Plant Physiol, 2001, 126(2): 835848.\[37\]Zhong R,Ye Z H. Molecular and biochemical characterization of three WDrepeatdomaincontaining inositol polyphosphate 5phosphatases in Arabidopsis thaliana. Plant Cell Physiol, 2004, 45(11): 17201728.\[38\]BreuilBroyer S, Morel P, de AlmeidaEngler J, et al. Highresolution boundary analysis during Arabidopsis thaliana flower development. Plant J, 2004, 38(1): 182192. |