Effectiveness of integrated bovine leukemia virus eradication strategies utilizing cattle carrying resistant and susceptible major histocompatibility complex class II DRB3 alleles

被引:2
作者
Borjigin, Liushiqi [1 ,2 ]
Watanuki, Sonoko [1 ,3 ]
Hamada, Rania [1 ]
Bai, Lanlan [1 ]
Hirose, Tomoya [1 ]
Sato, Hirotaka [1 ]
Yoneyama, Shuji [4 ]
Yasui, Anna [5 ]
Yasuda, Sohei [5 ]
Yamanaka, Risa [5 ]
Mimura, Munehito [5 ]
Baba, Miho [5 ]
Inokuma, Michihito [6 ]
Fujita, Keisuke [6 ]
Shinozaki, Yasuo [7 ]
Tanaka, Naoko [7 ]
Takeshima, Shin-nosuke [1 ,8 ]
Aida, Yoko [1 ,3 ]
机构
[1] RIKEN, Viral Infect Dis Unit, 2-1 Hirosawa, Wako, Saitama 3510198, Japan
[2] Okayama Univ Sci, Fac Vet Med, Imabari, Ehime 7948555, Japan
[3] Univ Tokyo, Grad Sch Agr & Life Sci, Lab Global Infect Dis Control Sci, 1-1-1 Yayoi,Bunkyo Ku, Tokyo 1138657, Japan
[4] Kenou Livestock Hyg Serv Ctr, Utsunomiya, Tochigi 3210905, Japan
[5] Kumagaya Livestock Hyg Serv Ctr, Kumagaya, Saitama 3600813, Japan
[6] Chuo Livestock Hyg Serv Ctr, Chiba 2620011, Japan
[7] Nanbu Livestock Hyg Serv Ctr, Kamogawa, Chiba 2960033, Japan
[8] Jumonji Univ, Dept Food & Nutr, Niiza, Saitama 3528510, Japan
关键词
bovine leukemia virus; resistant; susceptible; proviral load; BLV eradication; BLV INFECTION PROFILES; MILK-PRODUCTION; PROVIRAL LOAD; LEUKOSIS VIRUS; RISK-FACTORS; DAIRY; ASSOCIATION; TRANSMISSION; DRB3-ASTERISK-0902; PRODUCTIVITY;
D O I
10.3168/jds.2023-23524
中图分类号
S8 [畜牧、 动物医学、狩猎、蚕、蜂];
学科分类号
0905 ;
摘要
Bovine leukemia virus (BLV) has spread worldwide and causes serious problems in the cattle industry owing to the lack of effective treatments and vaccines. Bovine leukemia virus is transmitted via horizontal and vertical infection, and cattle with high BLV proviral load (PVL), which is a useful index for estimating disease progression and transmission risk, are considered major infectious sources within herds. The PVL strongly correlates with highly polymorphic bovine lymphocyte antigen (BoLA)-DRB3 alleles. The BoLA-DRB3*015:01 and *012:01 alleles are known susceptibility-associated markers related to high PVL, and cattle with susceptible alleles may be at a high risk of BLV transmission via direct contact with healthy cows. In contrast, the BoLA-DRB3*009:02 and *014:01:01 alleles comprise resistant markers associated with the development of low PVL, and cattle with resistant alleles may be low-risk spreaders for BLV transmission and disrupt the BLV transmission chain. However, whether polymorphisms in BoLA-DRB3 are useful for BLV eradication in farms remains unknown. Here, we conducted a validation trial of the integrated BLV eradication strategy to prevent new infection by resistant cattle and actively eliminate susceptible cattle in addition to conventional BLV eradication strategies to maximally reduce the BLV prevalence and PVL using a total of 342 cattle at 4 stall-barn farms in Japan from 2017 to 2019. First, we placed the resistant milking cattle between the BLV-positive and BLV-negative milking cattle in a stall barn for 3 yr. Interestingly, the resistant cattle proved to be an effective biological barrier to successfully block the new BLV infections in the stall-barn system among all 4 farms. Concomitantly, we actively eliminated cattle with high PVL, especially susceptible cattle. Indeed, 39 of the 60 susceptible cattle (65%), 76 of the 140 neutral cattle (54%), and 20 of the 41 resistant cattle (48.8%) were culled on 4 farms for 3 years. Consequently, BLV prevalence and mean PVL decreased in all 4 farms. In particular, one farm achieved BLV-free status in May 2020. By decreasing the number of BLV-positive animals, the revenue-enhancing effect was estimated to be yen 5,839,262 ($39,292.39) for the 4 farms over 3 yr. Our results suggest that an integrated BLV eradication program utilization of resistant cattle as a biological barrier and the preferential elimination of susceptible cattle are useful for BLV infection control.
引用
收藏
页码:9393 / 9409
页数:17
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