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"Wen Wang"

Original Article

Proteomic Analysis on Exosomes Derived from Patients’ Sera Infected with Echinococcus granulosus
Wen Wang, Xiaojing Zhou, Fang Cui, Chunli Shi, Yulan Wang, Yanfei Men, Wei Zhao, Jiaqing Zhao
Korean J Parasitol 2019;57(5):489-497.
Published online October 31, 2019
DOI: https://doi.org/10.3347/kjp.2019.57.5.489
Cystic echinococcosis (CE), a zoonotic disease caused by Echinococcus granulosus at the larval stage, predominantly develops in the liver and lungs of intermediate hosts and eventually results in organ malfunction or even death. The interaction between E. granulosus and human body is incompletely understood. Exosomes are nanosized particles ubiquitously present in human body fluids. Exosomes carry biomolecules that facilitate communication between cells. To the best of our knowledge, the role of exosomes in patients with CE is not reported. Here, we isolated exosomes from the sera of patients with CE (CE-exo) and healthy donors and subjected them to liquid chromatography-tandem mass spectrometry analysis. Proteomic analysis identified 49 proteins specifically expressed in CE-exo, including 4 proteins of parasitic origin. The most valuable parasitic proteins included tubulin alpha-1C chain and histone H4. And 8 proteins were differentially regulated in CE-exo (fold change>1.5), as analyzed with bioinformatic methods such as annotation and functional enrichment analyses. These findings may improve our understanding about the interaction between E. granulosus and human body, and may contribute to the diagnosis and prevention of CE.

Citations

Citations to this article as recorded by  Crossref logo
  • Progresses and challenges in Strongyloides spp. proteomics
    Natalia Tiberti, Marcello Manfredi, Chiara Piubelli, Dora Buonfrate
    Philosophical Transactions of the Royal Society B: Biological Sciences.2024;[Epub]     CrossRef
  • A pilot study of microRNAs expression profile in plasma of patients with hydatid disease: potential immunomodulation of hydatid disease
    Jing Xiao, Jian-Wen Wu, Yun-Zhuo Xin, Dong Song, Xiao-ping Gao, Mei Yin, Wei Zhao, Fu-lin Liu, Hao Wang, Jie Wang, Jia-Qing Zhao
    Parasitology Research.2024;[Epub]     CrossRef
  • Characterization of protein cargo of Echinococcus granulosus extracellular vesicles in drug response and its influence on immune response
    María Celeste Nicolao, Christian Rodriguez Rodrigues, Magalí B. Coccimiglio, Camila Ledo, Guillermo H. Docena, Andrea C. Cumino
    Parasites & Vectors.2023;[Epub]     CrossRef
  • Proteomic Analysis of Plasma-Derived Extracellular Vesicles From Mice With Echinococcus granulosus at Different Infection Stages and Their Immunomodulatory Functions
    Chunli Shi, Xiaojing Zhou, Wenjuan Yang, Jianwen Wu, Min Bai, Ying Zhang, Wei Zhao, Hui Yang, Atsushi Nagai, Mei Yin, Xiaoping Gao, Shuqin Ding, Jiaqing Zhao
    Frontiers in Cellular and Infection Microbiology.2022;[Epub]     CrossRef
  • Expression profiling of exosomal miRNAs derived from different stages of infection in mice infected with Echinococcus granulosus protoscoleces using high-throughput sequencing
    Jing Xiao, Yazhou Zhu, Jianwen Wu, Min Bai, Yunzhuo Xin, Qiang Wang, Jiaqing Zhao
    Parasitology Research.2022; 121(7): 1993.     CrossRef
  • Characterization of the B-Cell Epitopes of Echinococcus granulosus Histones H4 and H2A Recognized by Sera From Patients With Liver Cysts
    Andrea Maglioco, Facundo A. Agüero, María Pía Valacco, Alejandra Juárez Valdez, Margot Paulino, Alicia G. Fuchs
    Frontiers in Cellular and Infection Microbiology.2022;[Epub]     CrossRef
  • Proteomic profiling of serum extracellular vesicles identifies diagnostic markers for echinococcosis
    Xiaola Guo, Shuai Wang, Junmei Zhang, Rui Li, Yong’e Zhang, Zhengrong Wang, Qingming Kong, William C. Cho, Xianghong Ju, Yujuan Shen, Lingqiang Zhang, Haining Fan, Jianping Cao, Yadong Zheng, Alvaro Diaz
    PLOS Neglected Tropical Diseases.2022; 16(10): e0010814.     CrossRef
  • Extracellular vesicles secreted by model tapeworm Hymenolepis diminuta: biogenesis, ultrastructure and protein composition
    Hynek Mazanec, Peter Koník, Zdenko Gardian, Roman Kuchta
    International Journal for Parasitology.2021; 51(5): 327.     CrossRef
  • Identification of Different Extracellular Vesicles in the Hydatid Fluid of Echinococcus granulosus and Immunomodulatory Effects of 110 K EVs on Sheep PBMCs
    Jing Yang, Jin'en Wu, Yong Fu, Lujun Yan, Yating Li, Xiaola Guo, Yong'e Zhang, Xiaoqiang Wang, Yujuan Shen, William C. Cho, Yadong Zheng
    Frontiers in Immunology.2021;[Epub]     CrossRef
  • Extensive mitochondrial proteome disturbance occurs during the early stages of acute myocardial ischemia
    Jie Wang, Jun He, Yucheng Fan, Fangjing Xu, Qian Liu, Ruhua He, Ru Yan
    Experimental and Therapeutic Medicine.2021;[Epub]     CrossRef
  • Characterization of exosome-like vesicles derived from Taenia pisiformis cysticercus and their immunoregulatory role on macrophages
    Li-Qun Wang, Ting-Li Liu, Pan-Hong Liang, Shao-Hua Zhang, Tao-Shan Li, Yan-Ping Li, Guang-Xue Liu, Li Mao, Xue-Nong Luo
    Parasites & Vectors.2020;[Epub]     CrossRef
  • 8,397 View
  • 173 Download
  • 12 Web of Science
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Brief Communication
Complete Mitochondrial Genome of the Chagas Disease Vector, Triatoma rubrofasciata
Li Dong, Xiaoling Ma, Mengfei Wang, Dan Zhu, Yuebiao Feng, Yi Zhang, Jingwen Wang
Korean J Parasitol 2018;56(5):515-519.
Published online October 31, 2018
DOI: https://doi.org/10.3347/kjp.2018.56.5.515
Triatoma rubrofasciata is a wide-spread vector of Chagas disease in Americas. In this study, we completed the mitochondrial genome sequencing of T. rubrofasciata. The total length of T. rubrofasciata mitochondrial genome was 17,150 bp with the base composition of 40.4% A, 11.6% G, 29.4% T and 18.6% C. It included 13 protein-coding genes, 22 tRNA genes, 2 rRNA genes and one control region. We constructed a phylogenetic tree on the 13 protein-coding genes of T. rubrofasciata and other 13 closely related species to show their phylogenic relationship. The determination of T. rubrofasciata mitogenome would play an important role in understanding the genetic diversity and evolution of triatomine bugs.

Citations

Citations to this article as recorded by  Crossref logo
  • The mitogenome of Triatoma brasiliensis brasiliensis (Hemiptera: Reduviidae), the main Chagas disease vector in the semi-arid region of northeastern Brazil
    Carlos E. Almeida, Lifeng Du, Jingwen Wang, Dayane Pires-Silva, Elaine Folly-Ramos, Myrian Harry, Cleber Galvão
    Parasites & Vectors.2025;[Epub]     CrossRef
  • Accidental importation of the vector of Chagas disease, Triatoma rubrofasciata (De Geer, 1773) (Hemiptera, Reduviidae, Triatominae), in Europe
    Francisco Collantes, Juan Francisco Campos-Serrano, Ignacio Ruiz-Arrondo
    Journal of Vector Ecology.2023;[Epub]     CrossRef
  • Variation in the Mitochondrial Genome of the Chagas Disease Vector Triatoma infestans (Hemiptera: Reduviidae)
    Cintia Judith Fernández, Beatriz Alicia García
    Neotropical Entomology.2022; 51(3): 483.     CrossRef
  • The Complete Nucleotide Sequence and Gene Organization of the Mitochondrial Genome of Triatoma boliviana (Hemiptera, Reduviidae, Triatominae) and Phylogenetic Comparisons
    Sebastián Pita, Pablo Mora, Mirko Rojas-Cortez, Teresa Palomeque, Pedro Lorite, Francisco Panzera
    Arthropoda.2022; 1(1): 3.     CrossRef
  • Modelling the climatic suitability of Chagas disease vectors on a global scale
    Fanny E Eberhard, Sarah Cunze, Judith Kochmann, Sven Klimpel
    eLife.2020;[Epub]     CrossRef
  • Phylogeny of the North-Central American clade of blood-sucking reduviid bugs of the tribe Triatomini (Hemiptera: Triatominae) based on the mitochondrial genome
    Magali Aguilera-Uribe, Rubi Nelsi Meza-Lázaro, Troy J. Kieran, Carlos N. Ibarra-Cerdeña, Alejandro Zaldívar-Riverón
    Infection, Genetics and Evolution.2020; 84: 104373.     CrossRef
  • Mitochondrial genomes of three kissing bugs (Reduviidae: Triatominae) and their phylogenetic implications
    Yisheng Zhao, Manjie Jiang, Yunfei Wu, Fan Song, Wanzhi Cai, Hu Li
    International Journal of Biological Macromolecules.2019; 134: 36.     CrossRef
  • Mitogenome analysis of Indian isolate of Rhipicephalus microplus clade A sensu ( ): A first report from Maritime South-East Asia
    Arun Kumar De, Ramachandran Muthiyan, Perumal Ponraj, K. Muniswamy, Jai Sunder, A. Kundu, D. Karunakaran, Zachariah George, M.S. Kundu, S.K. Zamir Ahmed, Dhruba Malakar, D. Bhattacharya
    Mitochondrion.2019; 49: 135.     CrossRef
  • Biological attributes of the kissing bug Triatoma rubrofasciata from Vietnam
    Ho Viet Hieu, Le Thanh Do, Sebastián Pita, Hoang Ha, Pham Thi Khoa, Pham Anh Tuan, Ta Phuong Mai, Ngo Giang Lien, Francisco Panzera
    Parasites & Vectors.2019;[Epub]     CrossRef
  • 8,679 View
  • 110 Download
  • 9 Web of Science
  • Crossref