The apicoplast of Haemoproteus columbae: A comparative study of this organelle genome in Haemosporida

被引:7
|
作者
Cepeda, Axl S. [1 ,2 ]
Pacheco, M. Andreina [2 ]
Escalante, Ananias A. [2 ]
Alzate, Juan F. [3 ]
Matta, Nubia E. [1 ]
机构
[1] Univ Nacl Colombia, Sede Bogota, Dept Biol, Grp Invest Caracterizac Genet & Inmunol,Fac Cienc, Bogota, Colombia
[2] Temple Univ, Dept Biol, Inst Genom & Evolutionary Med iGEM, Philadelphia, PA 19122 USA
[3] Univ Antioquia, Fac Med, Ctr Nacl Secuenciac Genom CNSG, SIU,Dept Microbiol & Parasitol, Medellin, Colombia
关键词
Apicoplast genome; A plus T content bias; Codon Usage bias; clpC gene; Haemoproteus columbae; Haemosporida; CYTOCHROME-B; PLASMODIUM; APICOMPLEXAN; EVOLUTION; PHYLOGENY; SEQUENCE; MITOCHONDRIAL; SUBSTITUTION; PARASITE; ORIGIN;
D O I
10.1016/j.ympev.2021.107185
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
Apicomplexa is a phylum of parasitic protozoa; among them are the order Haemosporida, vector-borne parasites that include those that cause malaria (genus Plasmodium). Most Apicomplexa species have a non-photosynthetic plastid or apicoplast. Given its unique metabolic pathways, this organelle is considered a target for malaria therapeutics. Regardless of its importance, there is a paucity of complete apicoplast genome data hindering comparative studies. Here, the Haemoproteus (Haemoproteus) columbae apicoplast genome (lineage HAECOL1) was obtained using next-generation sequencing. This genome was included in a comparative analysis with other plastids. This 29.8 kb circular genome shares the same structure found in Plasmodium parasites. It is A + T rich (87.7%), comparable but at the higher end of A + T content observed in Plasmodium species (85.5-87.2%). As expected, considering its high A + T content, the synonymous codon usage (RSCU) and the effective number of codons (ENc) showed a moderate codon bias. Several apicoplast genes have a phylogenetic signal. However, unlike mitochondrial genes, single-gene phylogenies have low support in haemosporidian clades that diverged recently. The H. columbae apicoplast genome suggests that the apicoplast function may be conserved across Haemosporida. This parasite could be a model to study this organelle in a non-mammalian system.
引用
收藏
页数:8
相关论文
共 50 条
  • [1] In vitro development of Haemoproteus columbae (Haemosporida: Haemoproteidae), with perspectives for genomic studies of avian haemosporidian parasites
    Coral, Arelis A.
    Valkiunas, Gediminas
    Gonzalez, Angie D.
    Matta, Nubia E.
    EXPERIMENTAL PARASITOLOGY, 2015, 157 : 163 - 169
  • [2] ELECTRONMICROSCOPIC STUDY OF MICROGAMETE OF HAEMOPROTEUS-COLUMBAE KRUSE
    AILOR, BJ
    JOURNAL OF PROTOZOOLOGY, 1972, 19 (03): : 458 - &
  • [3] High prevalence and genetic diversity of Haemoproteus columbae (Haemosporida: Haemoproteidae) in feral pigeons Columba livia in Cape Town, South Africa
    Carina Nebel
    Josef Harl
    Adrien Pajot
    Herbert Weissenböck
    Arjun Amar
    Petra Sumasgutner
    Parasitology Research, 2020, 119 : 447 - 463
  • [4] High prevalence and genetic diversity of Haemoproteus columbae (Haemosporida: Haemoproteidae) in feral pigeons Columba livia in Cape Town, South Africa
    Nebel, Carina
    Harl, Josef
    Pajot, Adrien
    Weissenboeck, Herbert
    Amar, Arjun
    Sumasgutner, Petra
    PARASITOLOGY RESEARCH, 2020, 119 (02) : 447 - 463
  • [5] Experimental characterization of the complete life cycle of Haemoproteus columbae, with a description of a natural host-parasite system used to study this infection
    Cepeda, Axl S.
    Lotta-Arevalo, Ingrid A.
    Pinto-Osorio, David F.
    Macias-Zacipa, Jhon
    Valkiunas, Gediminas
    Barato, Paola
    Matta, Nubia E.
    INTERNATIONAL JOURNAL FOR PARASITOLOGY, 2019, 49 (12) : 975 - 984
  • [6] Plasmodium vivax apicoplast genome: A comparative analysis of major genes from Indian field isolates
    Saxena, Vishal
    Garg, Shilpi
    Tripathi, Jyotsna
    Sharma, Sonal
    Pakalapati, Deepak
    Subudhi, Amit K.
    Boopathi, P. A.
    Saggu, Gagandeep S.
    Kochar, Sanjay K.
    Kochar, Dhanpat K.
    Das, Ashis
    ACTA TROPICA, 2012, 122 (01) : 138 - 149
  • [7] A phylogenetic study of Haemocystidium parasites and other Haemosporida using complete mitochondrial genome sequences
    Pacheco, M. Andreina
    Ceriaco, Luis M. P.
    Matta, Nubia E.
    Vargas-Ramirez, Mario
    Bauer, Aaron M.
    Escalante, Ananias A.
    INFECTION GENETICS AND EVOLUTION, 2020, 85
  • [8] The Study of Biting Midges Culicoides Latreille, 1809 (Diptera: Ceratopogonidae) and the Prevalence of Haemoproteus Kruse, 1890 (Haemosporida: Haemoproteidae) on the Curonian Spit of the Baltic Sea
    Platonova, Elena
    Erokhina, Maria
    Mukhina, Alexandra
    Davydov, Alexander
    Mukhin, Andrey
    DIVERSITY-BASEL, 2024, 16 (12):
  • [9] Organelle genomes of Indigofera amblyantha and Indigofera pseudotinctoria: comparative genome analysis, and intracellular gene transfer
    Zhao, Junming
    Chen, Jing
    Xiong, Yi
    He, Wei
    Xiong, Yanli
    Xu, Yuandong
    Ma, Huizhen
    Yu, Qingqing
    Li, Zhou
    Liu, Lin
    Ma, Xiao
    Fan, Yan
    INDUSTRIAL CROPS AND PRODUCTS, 2023, 198
  • [10] Complete Organelle Genome of the Desiccation-Tolerant (DT) Moss Tortula atrovirens and Comparative Analysis of the Pottiaceae Family
    Ma, Yang
    Zhang, Lifang
    Yang, Min
    Qi, Qin
    Yang, Qian
    Lopez-Pujol, Jordi
    Wang, Lihong
    Zhao, Dongping
    GENES, 2024, 15 (06)