T4 PHAGE EVOLUTION DATA IN TERMS OF A TIME-DEPENDENT TOPAL-FRESCO MECHANISM

被引:12
作者
COOPER, WG
机构
[1] International Physics Health and Energy, Inc., Houston, 77030, Texas
关键词
TIME-DEPENDENT BASE SUBSTITUTIONS; T4 PHAGE EVOLUTION; TRANSCRIPTION MECHANISM; REPLICATION MECHANISM; EVOLUTIONARY-SENSITIVE CODONS; GROUND-STATE COLLAPSE IN G-C DNA;
D O I
10.1007/BF00566059
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 physical interpretation of the Topal-Fresco [Nature 263, 285 (1976)] model for spontaneous base substitutions suggests that hydrogen-bonded DNA protons satisfy the criteria for a classical noninteracting isolated system. Accessible states for duplex G-C protons include the keto-amino state and the sir complementary enol-imine isomers. Hydrogen-bonded enol and imine protons occupy symmetric double-minima created by the two sets of indistinguishable electron lone pairs and a single proton belonging to each enol-imine end group. These protons will consequently participate in coupled quantum mechanical flip-flop, tunneling back and forth between symmetric energy wells. This results in a quantum mixing of proton energy states where the lowest energy stare will be a linear combination of available G-C isomers. The resulting conclusion is that metastable keto-amino G-C protons will populate accessible enol-imine stationary states at rates governed by quantum laws of statistical equilibrium consistent with achieving the lowest energy condition for duplex G-C protons. Enol-imine G-C stationary states are bound more tightly, of the order of 3 to 12 kcal/mol, which requires a modified mode of Topal-Fresco replication that will inhibit reequilibration of enol and imine G and C template isomers and, thus, promote the formation of complementary mispairs. The model is demonstrated on time-dependent base substitutions expressed by T4 phage DNA systems where data are consistent with model explanations, including the prediction that time-dependent evolutionary transversion sites will exhibit both G-C-to-T-A and G-C-to-C-G transversions at replication, due to proton flip-flop alteration of G template genetic specificity. The observation that A-T sites are resistant to time-dependent evolutionary base substitutions, expressed exclusively at G-C sites, allows codons to be classified as either evolutionary sensitive (16 codons) or evolutionary resistant (8 codons). These criteria provide possible explanations for expansion properties of the CGG fragile X sequences. Enol-imine G-C stationary states appear to have been
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页码:383 / 395
页数:13
相关论文
共 32 条
[1]   HEAT MUTAGENESIS IN BACTERIOPHAGE-T4 - TRANSITION PATHWAY [J].
BALTZ, RH ;
BINGHAM, PM ;
DRAKE, JW .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1976, 73 (04) :1269-1273
[2]  
BELL RP, 1981, PROTON TUNNELING CHE
[4]   HEAT MUTAGENESIS IN BACTERIOPHAGE-T4 - TRANSVERSION PATHWAY [J].
BINGHAM, PM ;
BALTZ, RH ;
RIPLEY, LS ;
DRAKE, JW .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1976, 73 (11) :4159-4163
[5]   RATES OF DNA-SEQUENCE EVOLUTION DIFFER BETWEEN TAXONOMIC GROUPS [J].
BRITTEN, RJ .
SCIENCE, 1986, 231 (4744) :1393-1398
[6]   MITOCHONDRIAL-DNA SEQUENCES OF PRIMATES - TEMPO AND MODE OF EVOLUTION [J].
BROWN, WM ;
PRAGER, EM ;
WANG, A ;
WILSON, AC .
JOURNAL OF MOLECULAR EVOLUTION, 1982, 18 (04) :225-239
[7]  
CALDIN EF, 1964, FAST REACTIONS SOLUT, P268
[8]  
COOEPR WG, 1979, INT J QUANTUM CHEM Q, V6, P171
[9]  
COOPER WG, 1993, CANCER BIOCHEM BIOPH, V13, P147
[10]  
COOPER WG, 1994, UNPUB HYPOTHESIS CAU