Mutations affecting the biosynthesis of S-adenosylmethionine cause reduction of DNA methylation in Neurospora crassa

被引:31
作者
Roberts, CJ [1 ]
Selker, EU [1 ]
机构
[1] UNIV OREGON,INST MOLEC BIOL,EUGENE,OR 97403
关键词
D O I
10.1093/nar/23.23.4818
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
A temperature-sensitive methionine auxotroph of Neurospora crassa was found in a collection of conditional mutants and shown to be deficient in DNA methylation when grown under semipermissive conditions. The defective gene was identified as met-3, which encodes cystathionine-gamma-synthase. We explored the possibility that the methylation defect results from deficiency of S-adenosylmethionine (SAM), the presumptive methyl group donor. Methionine starvation of mutants from each of nine complementation groups in the methionine (met) pathway (met-1, met-2, met-3, met-5, met-6, met-8, met-9, met-10 and for) resulted in decreased DNA methylation while amino acid starvation, per se, did not. In most of the strains, including wild-type, intracellular SAM peaked during rapid growth (12-18 h after inoculation), whereas DNA methylation continued to increase. In met mutants starved for methionine, SAM levels were most reduced (3-11-fold) during rapid growth while the greatest reduction in DNA methylation levels occurred later. Addition of 3 mM methionine to cultures of met or cysteine-requiring (cys) mutants resulted in 5-28-fold increases in SAM, compared with wild-type, at a time when DNA methylation was reduced similar to 40%, suggesting that the decreased methylation during rapid growth in Neurospora is not due to limiting SAM. DNA methylation continued to increase in a cys-3 mutant that had stopped growing due to methionine starvation, suggesting that methylation is not obligatorily coupled to DNA replication in Neurospora.
引用
收藏
页码:4818 / 4826
页数:9
相关论文
共 52 条
[1]  
ADAMS RLP, 1985, SPRINGER SERIES MOL
[2]   METHYLATION INDUCED PREMEIOTICALLY IN ASCOBOLUS - COEXTENSION WITH DNA REPEAT LENGTHS AND EFFECT ON TRANSCRIPT ELONGATION [J].
BARRY, C ;
FAUGERON, G ;
ROSSIGNOL, JL .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1993, 90 (10) :4557-4561
[3]   THE ESSENTIALS OF DNA METHYLATION [J].
BIRD, A .
CELL, 1992, 70 (01) :5-8
[4]   CPG-RICH ISLANDS AND THE FUNCTION OF DNA METHYLATION [J].
BIRD, AP .
NATURE, 1986, 321 (6067) :209-213
[5]   DNA METHYLATION INHIBITS TRANSCRIPTION INDIRECTLY VIA A METHYL-CPG BINDING-PROTEIN [J].
BOYES, J ;
BIRD, A .
CELL, 1991, 64 (06) :1123-1134
[6]   REGULATION OF METHIONINE BIOSYNTHESIS IN NEUROSPORA-CRASSA [J].
BURTON, EG ;
METZENBERG, RL .
ARCHIVES OF BIOCHEMISTRY AND BIOPHYSICS, 1975, 168 (01) :219-229
[7]   DNA SYNTHESIS IN NORMAL AND VIRUS-TRANSFORMED MAMMALIAN CELLS AFTER METHIONINE DEPRIVATION [J].
CULP, LA ;
BLACK, PH .
BIOCHIMICA ET BIOPHYSICA ACTA, 1971, 247 (02) :220-&
[8]  
Davis RH, 1970, METHODS ENZYMOL A, V17A, P47
[9]   ROLE OF DNA METHYLATION IN THE REGULATION OF TRANSCRIPTION [J].
EDEN, S ;
CEDAR, H .
CURRENT OPINION IN GENETICS & DEVELOPMENT, 1994, 4 (02) :255-259
[10]   METHYLATION OF PARENTAL AND PROGENY DNA STRANDS IN PHYSARUM-POLYCEPHALUM [J].
EVANS, HH ;
EVANS, TE ;
LITTMAN, S .
JOURNAL OF MOLECULAR BIOLOGY, 1973, 74 (04) :563-572