Lineage-Specific Differences in the Amino Acid Substitution Process

被引:9
|
作者
Huzurbazar, Snehalata [2 ]
Kolesov, Grigory [1 ]
Massey, Steven E. [1 ]
Harris, Katherine C. [1 ]
Churbanov, Alexander [1 ]
Liberles, David A. [1 ]
机构
[1] Univ Wyoming, Dept Mol Biol, Laramie, WY 82071 USA
[2] Univ Wyoming, Dept Stat, Laramie, WY 82071 USA
关键词
molecular evolution; protein structure; sequence-structure relationships; population genetics; selection; SELECTION INTENSITY; POSITIVE SELECTION; MAMMALIAN GENES; POPULATION-SIZE; PROTEIN; EVOLUTION; RATES; PATTERNS; MODEL; TIME;
D O I
10.1016/j.jmb.2009.11.075
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
In Darwinian evolution, mutations occur approximately at random in a gene, turned into amino acid mutations by the genetic code. Some mutations are fixed to become substitutions and some are eliminated from the population. Partitioning pairs of closely related species with complete genome sequences by average population size of each pair, we looked at the substitution matrices generated for these partitions and compared the substitution patterns between species. We estimated a population genetic model that relates the relative fixation probabilities of different types of mutations to the selective pressure and population size. Parameterizations of the average and distribution of selective pressures for different amino acid substitution types in different population size comparisons were generated with a Bayesian framework. We found that partitions in population size as well as in substitution type are required to explain the substitution data. Selection coefficients were found to decrease with increasingly radical amino acid substitution and with increasing effective population size. To further explore the role of underlying processes in amino acid substitution, we analyzed embryophyte (plant) gene families from TAED (The Adaptive Evolution Database), where solved structures for at least one member exist in the Protein Data Bank. Using PAML, we assigned branches to three categories: strong negative selection, moderate negative selection/neutrality, and positive diversifying selection. Focusing on the first and third categories, we identified sites changing along gene family lineages and observed the spatial patterns of substitution. Selective sweeps were expected to create primary sequence clustering under positive diversifying selection. Co-evolution through direct physical interaction was expected to cause tertiary structural clustering. Under both positive and negative selection, the substitution patterns were found to be nonrandom. Under positive diversifying selection, significant independent signals were found for primary and tertiary sequence clustering, suggesting roles for both selective sweeps and direct physical interaction. Under strong negative selection, the signals were not found to be independent. All together, a complex interplay of population genetic and protein thermodynamics forces is suggested. (C) 2009 Elsevier Ltd. All rights reserved.
引用
收藏
页码:1410 / 1421
页数:12
相关论文
共 50 条
  • [1] A Dirichlet Process Prior for Estimating Lineage-Specific Substitution Rates
    Heath, Tracy A.
    Holder, Mark T.
    Huelsenbeck, John P.
    MOLECULAR BIOLOGY AND EVOLUTION, 2012, 29 (03) : 939 - 955
  • [2] Influence of Lineage-Specific Amino Acid Dimorphisms in GyrA on Mycobacterium tuberculosis Resistance to Fluoroquinolones
    Kim, Hyun
    Nakajima, Chie
    Kim, Youn Uck
    Yokoyama, Kazumasa
    Suzuki, Yasuhiko
    JAPANESE JOURNAL OF INFECTIOUS DISEASES, 2012, 65 (01) : 72 - 74
  • [3] Lineage-specific differences in evolutionary mode in a salamander courtship pheromone
    Palmer, CA
    Watts, RA
    Gregg, RG
    McCall, MA
    Houck, LD
    Highton, R
    Arnold, SJ
    MOLECULAR BIOLOGY AND EVOLUTION, 2005, 22 (11) : 2243 - 2256
  • [4] BRAF Mutations: The Discovery of Allele- and Lineage-Specific Differences
    Hanrahan, Aphrothiti J.
    Solit, David B.
    CANCER RESEARCH, 2022, 82 (01) : 12 - 14
  • [5] Lineage-specific differences in telomere length after bone marrow transplantation
    YH Li
    SK Ma
    TSK Wan
    WY Au
    LF Fung
    AYH Leung
    AKW Lie
    LC Chan
    Bone Marrow Transplantation, 2002, 30 : 475 - 477
  • [6] Lineage-specific differences and regulatory networks governing human chondrocyte development
    Richard, Daniel
    Pregizer, Steven
    Venkatasubramanian, Divya
    Raftery, Rosanne M.
    Muthuirulan, Pushpanathan
    Liu, Zun
    Capellini, Terence D.
    Craft, April M.
    ELIFE, 2023, 12
  • [7] Lineage-specific differences in telomere length after bone marrow transplantation
    Li, YH
    Ma, SK
    Wan, TSK
    Au, WY
    Fung, LF
    Leung, AYH
    Lie, AKW
    Chan, LC
    BONE MARROW TRANSPLANTATION, 2002, 30 (07) : 475 - 477
  • [8] Lineage-specific amino acid substitutions in region 2 of the RNA polymerase σ subunit affect the temperature of promoter opening
    Barinova, N.
    Zhilina, E.
    Bass, I.
    Nikiforov, V.
    Kulbachinskiy, A.
    JOURNAL OF BACTERIOLOGY, 2008, 190 (08) : 3088 - 3092
  • [9] Frequent lineage-specific substitution rate changes support an episodic model for protein evolution
    Prabh, Neel
    Tautz, Diethard
    G3-GENES GENOMES GENETICS, 2021, 11 (12):
  • [10] Epidemiological Evidence for Lineage-Specific Differences in the Risk of Inapparent Chikungunya Virus Infection
    Carrillo, Fausto Bustos
    Collado, Damaris
    Sanchez, Nery
    Ojeda, Sergio
    Lopez Mercado, Brenda
    Burger-Calderon, Raquel
    Gresh, Lionel
    Gordon, Aubree
    Balmaseda, Angel
    Kuan, Guillermina
    Harris, Eva
    JOURNAL OF VIROLOGY, 2019, 93 (04)