Adaptive evolution of tembusu virus enhances mammalian pathogenicity and vector competence.

Tao Wang1,2,3,4 Fan Liu1,2 Yuyan Fan1,2 Wei Li1,2 Yu He1,2,3,4,5 Zhen Wu1,2,3,4,5 Rui Luo6 Mingshu Wang1,2,3,4 Renyong Jia1,2,3,4 Anchun Cheng1,2,3,4,7 Shun Chen1,2,3,4,5
Affiliations 7 institutions
  1. Institute of Veterinary Medicine and Immunology, Sichuan Agricultural University, Chengdu, Sichuan, China.
  2. Research Center of Avian Disease, College of Veterinary Medicine, Sichuan Agricultural University, Chengdu, Sichuan, China.
  3. Agricultural Animal Diseases and Veterinary Public Health Key Laboratory of Sichuan Province, Sichuan Agricultural University, Chengdu, Sichuan, China.
  4. Engineering Research Center of Southwest Animal Disease Prevention and Control Technology for Ministry of Education, Sichuan Agricultural University, Chengdu, Sichuan, China.
  5. Key Laboratory of Agricultural Bioinformatics, Ministry of Education, Sichuan Agricultural University, Chengdu, Sichuan, China.
  6. State Key Laboratory of Agricultural Microbiology, College of Veterinary Medicine, Huazhong Agricultural University, Wuhan, China.
  7. Veterinary Department in College of Animal Science, State Key Laboratory of Green Pesticide, Institute of Veterinary Immunology and Green Drugs, Guizhou University, Guiyang, China.

Abstract

Tembusu virus (TMUV) is an avian orthoflavivirus responsible for severe egg-drop syndrome, inflicting substantial economic losses on the poultry industry in China and Southeast Asia. TMUV exhibits zoonotic potential and has diversified into distinct phylogenetic clusters; however, the phenotypic consequences of this genetic divergence remain poorly characterized. This study systematically evaluated the mammalian pathogenicity in mice and the vector competence in Culex quinquefasciatus mosquitoes of five TMUV isolates representing major clusters (clusters 2.1.1, 2.1.2, 2.2, 3.1, and 3.2). Results showed that contemporary duck-derived isolates (clusters 2 and 3.2) demonstrated superior replication efficiency and infection rates in mosquitoes compared to the ancestral mosquito-derived isolate (MM 1775, cluster 3.1); the recently emerged chicken-derived cluster 3.2 isolate (WH2025) caused 100% mortality in the infected mice, exhibiting the highest pathogenicity. These findings indicate that TMUV evolution has selected for phenotypes with enhanced mammalian virulence and increased its fitness in mosquito vectors, highlighting a growing risk of cross-species transmission. This study provides crucial insights for risk assessment and targeted surveillance for TMUV.IMPORTANCETembusu virus (TMUV) is an emerging mosquito-borne flavivirus that has been circulating in China and Southeast Asia in recent years, causing significant economic losses to the waterfowl farming industry. In recent years, strains of TMUV cluster 3.2 have been increasingly isolated from laying hens and geese, and it has been reported that TMUV can cause mortality in mammals (dolphins). TMUV exhibits mosquito-borne transmission and potential zoonotic characteristics; however, there is a lack of systematic understanding regarding the vector transmission efficiency and changes in mammalian pathogenicity among different evolutionary clusters of TMUV. This study compares the adaptability to Culex quinquefasciatus and pathogenicity in mice of major TMUV evolutionary clusters, contributing to our understanding of TMUV's mosquito-borne transmission capacity and mammalian pathogenicity. The findings are of great significance in assessing the transmission capacity and strain risks of epidemic TMUV strains.

Supporting text Virus Host Location
mosquito 8 mouse 4 pathogenicity 54 Tembusu virus 7 vector competence 3

Evidence records

3 total
Experimental Infection
3 records · 2 evidence types
Evidence type
1 records
OVE11906
Key finding

Chicken-derived TMUV isolate WH2025 (cluster 3.2) caused 100% mortality in experimentally infected mice, indicating highest pathogenicity among tested isolates.

Virus
Host
Location
Not specified
Supporting text

the recently emerged chicken-derived cluster 3.2 isolate (WH2025) caused 100% mortality in the infected mice, exhibiting the highest pathogenicity.

Method
experimental infection of mice | mortality observation
Experimental system
mouse infection model
Evidence type
2 records
OVE11907
Key finding

Five TMUV isolates from clusters 2.1.1, 2.1.2, 2.2, 3.1, and 3.2 were experimentally tested in mice to assess mammalian pathogenicity; the chicken-derived cluster 3.2 isolate WH2025 caused 100% mortality.

Virus
Host
Context pending
Location
Not specified
Supporting text

This study systematically evaluated the mammalian pathogenicity in mice … of five TMUV isolates representing major clusters (clusters 2.1.1, 2.1.2, 2.2, 3.1, and 3.2). … the recently emerged chicken-derived cluster 3.2 isolate (WH2025) caused 100% mortality in the infected mice, exhibiting the highest pathogenicity.

Method
experimental infection | pathogenicity assessment | mortality monitoring
Experimental system
animal challenge model in mice
OVE11908
Key finding

In Culex quinquefasciatus, contemporary duck-derived TMUV isolates from clusters 2 and 3.2 replicated and infected more efficiently than the ancestral mosquito-derived isolate MM 1775 (cluster 3.1).

Virus
Host
Context pending Context pending
Location
Not specified
Supporting text

contemporary duck-derived isolates (clusters 2 and 3.2) demonstrated superior replication efficiency and infection rates in mosquitoes compared to the ancestral mosquito-derived isolate (MM 1775, cluster 3.1)

Method
experimental infection of mosquitoes | replication efficiency assays | infection rate assessment
Experimental system
mosquito vector competence and replication assays