Porcine reproductive and respiratory syndrome virus infection induces glycolysis of macrophages to facilitate viral replication
Author:
  • Article
  • | |
  • Metrics
  • |
  • Reference [23]
  • |
  • Related [20]
  • | | |
  • Comments
    Abstract:

    This work aims to explore the effect of glycolysis on the replication of porcine reproductive and respiratory syndrome virus (PRRSV) in porcine alveolar macrophages (PAMs). The changes of glucose metabolism, PRRSV protein levels, PRRSV titers, and the relative expression levels of genes and proteins in PAMs were analyzed by ELISA, qPCR, virus titration, and Western blotting after PRRSV infection. The effect of hypoxia-inducible factor-1α (HIF-1α) on PRRSV replication was subsequently assessed by specific siRNAs targeting to HIF-1α. The results showed that PRRSV infection enhanced glycolysis, elevated the levels of glucose uptake and lactate in the supernatant (P<0.05 and 0.01, respectively), reduced ATP production (P<0.05), and up-regulated the expression of hexokinase 2 (HK2), 6-phosphofructo-2- kinase/fructose-2,6-biphosphatase 3 (PFKFB3), and pyruvate kinase isozyme type M2 (PKM2) in PAMs (P<0.05 and 0.01, respectively). Glycolysis inhibitors down-regulated the expression of PRRSV proteins and reduced virus titers (P<0.01). The knockdown of HIF-1α by siRNAs inhibited glycolysis and lowered PRRSV titers (P<0.05). In addition, the interferon pathways inhibited by PRRSV infection were reversed by the inhibition of glycolysis. These findings may facilitate further investigation of the role of glycolysis in PRRSV replication.

    Reference
    [1] HAN J, ZHOU L, GE XN, GUO X, YANG HC. Pathogenesis and control of the Chinese highly pathogenic porcine reproductive and respiratory syndrome virus[J]. Veterinary Microbiology, 2017, 209: 30-47.
    [2] WANG LJ, XIE WT, CHEN XX, QIAO SL, ZHAO MM, GU Y, ZHAO BL, ZHANG GP. Molecular epidemiology of porcine reproductive and respiratory syndrome virus in central China since 2014: the prevalence of NADC30-like PRRSVs[J]. Microbial Pathogenesis, 2017, 109: 20-28.
    [3] 杨汉春. 猪场蓝耳病的流行现状与防控对策[J]. 兽医导刊, 2021(1): 7.YANG HC. Epidemic situation and prevention and control countermeasures of blue ear disease in pig farms[J]. Veterinary Orientation, 2021(1): 7(in Chinese).
    [4] SANCHEZ EL, LAGUNOFF M. Viral activation of cellular metabolism[J]. Virology, 2015, 479/480: 609-618.
    [5] MAHROOZ A, MUSCOGIURI G, BUZZETTI R, MADDALONI E. The complex combination of COVID-19 and diabetes: pleiotropic changes in glucose metabolism[J]. Endocrine, 2021, 72(2): 317-325.
    [6] CODO AC, DAVANZO GG, de BRITO MONTEIRO L, de SOUZA GF, MURARO SP, VIRGILIO-DA-SILVA JV, PRODONOFF JS, CARREGARI VC, de BIAGI JUNIOR CAO, CRUNFLI F, RESTREPO JLJ, VENDRAMINI PH, REIS-DE-OLIVEIRA G, dos SANTOS KB, TOLEDO-TEIXEIRA DA, PARISE PL, MARTINI MC, MARQUES RE, CARMO HR, BORIN A, et al. Elevated glucose levels favor SARS-CoV-2 infection and monocyte response through a HIF-1α/glycolysis-dependent axis[J]. Cell Metabolism, 2020, 32(3): 437-446.e5.
    [7] LI HZ, LIN CH, QI WB, SUN ZZ, XIE ZX, JIA WX, NING ZY. Senecavirus A-induced glycolysis facilitates virus replication by promoting lactate production that attenuates the interaction between MAVS and RIG-I[J]. PLoS Pathogens, 2023, 19(5): e1011371.
    [8] GONG YB, TANG N, LIU PR, SUN YJ, LU SX, LIU WW, TAN L, SONG CP, QIU XS, LIAO Y, YU SQ, LIU XF, LIN SH, DING C. Newcastle disease virus degrades SIRT3via PINK1-PRKN-dependent mitophagy to reprogram energy metabolism in infected cells[J]. Autophagy, 2022, 18(7): 1503-1521.
    [9] PANG Y, ZHOU YR, WANG YC, SUN Z, LIU J, LI CY, XIAO SB, FANG LR. Porcine reproductive and respiratory syndrome virus nsp1β stabilizes HIF-1α to enhance viral replication[J]. Microbiology Spectrum, 2022, 10(6): e0317322.
    [10] LIU XW, LIU X, BAI J, GAO YN, SONG ZB, NAUWYNCK H, WANG XW, YANG YQ, JIANG P. Glyceraldehyde-3-phosphate dehydrogenase restricted in cytoplasmic location by viral GP5 facilitates porcine reproductive and respiratory syndrome virus replication via its glycolytic activity[J]. Journal of Virology, 2021, 95(18): e0021021.
    [11] LU Q, BAI J, ZHANG LL, LIU J, JIANG ZH, MICHAL JJ, HE QD, JIANG P. Two-dimensional liquid chromatography-tandem mass spectrometry coupled with isobaric tags for relative and absolute quantification (iTRAQ) labeling approach revealed first proteome profiles of pulmonary alveolar macrophages infected with porcine reproductive and respiratory syndrome virus[J]. Journal of Proteome Research, 2012, 11(5): 2890-2903.
    [12] ZHOU L, HE R, FANG PN, LI MQ, YU HS, WANG QM, YU Y, WANG FB, ZHANG Y, CHEN AD, PENG NF, LIN Y, ZHANG R, TRILLING M, BROERING R, LU MJ, ZHU Y, LIU S. Hepatitis B virus rigs the cellular metabolome to avoid innate immune recognition[J]. Nature Communications, 2021, 12: 98.
    [13] LI XW, SONG YW, WANG XY, FU C, ZHAO FF, ZOU LK, WU KK, CHEN WX, LI ZY, FAN JD, LI YW, LI BK, ZENG S, LIU XD, ZHAO MQ, YI L, CHEN JD, FAN SQ. The regulation of cell homeostasis and antiviral innate immunity by autophagy during classical swine fever virus infection[J]. Emerging Microbes & Infections, 2023, 12(1): 2164217.
    [14] McGETTRICK AF, O’NEILL LAJ. The role of HIF in immunity and inflammation[J]. Cell Metabolism, 2020, 32(4): 524-536.
    [15] KOYASU S, KOBAYASHI M, GOTO Y, HIRAOKA M, HARADA H. Regulatory mechanisms of hypoxia-inducible factor 1 activity: two decades of knowledge[J]. Cancer Science, 2018, 109(3): 560-571.
    [16] TIAN MF, LIU WY, LI X, ZHAO PY, SHEREEN MA, ZHU CL, HUANG SY, LIU SY, YU X, YUE MM, PAN P, WANG WB, LI YK, CHEN XL, WU KL, LUO Z, ZHANG QW, WU JG. HIF-1α promotes SARS-CoV-2 infection and aggravates inflammatory responses to COVID-19[J]. Signal Transduction and Targeted Therapy, 2021, 6: 308.
    [17] TANNAHILL GM, CURTIS AM, ADAMIK J, PALSSON-MCDERMOTT EM, McGETTRICK AF, GOEL G, FREZZA C, BERNARD NJ, KELLY B, FOLEY NH, ZHENG L, ?????婔????乔????塚唬??????乓??堠??卒啒丠????偈?乎??卌??????匠坃???卒啅?????堠啐???????丬?婗婁??敓瑌?慙氠???慂捅瑁慓瑌故?椠獆?愬?湥慴琠畡牬愮氠?獵畣灣灩牮敡獴獥漠物?漠晡?删?剮?獬楡杭湭慡汴楯湲杹?扳祩?瑮慡牬朠整瑨楡湴朠???噵卣孥?崠???攱沲氠???は????????????????????敥????戱爳?嬠名?崶?娠??丸?′??????唾?報????何????匬唠乚?奕夠????佚?奁乎????????????乘??做??倠潙爬挠楈湁敎?牐攬瀠牚潈摏畕挠瑘楈瘬攠?慕渠摙?爬攠獗灁楎片愠瑒潌爮礠?獵祣湬摥牡潲洠整?癡楮牳畬獯?浡整摩楯慮琠敯摦?汈慉捆琭愱璱攠?普慤捵楣汥楤琠慢瑹攠獩?癦楬牵略獮?牡攠灁氠椨捈愱瑎椱漩渠?扮祦?瑣慴物杯敮琠楩湳朠???噴卩季?嵬??噯攠瑴敨牥椠湰慲牯祤??楴捩牯潮戠楯潦氠潰杲祯???ぬ??????????べ?????es[J]. Emerging Microbes & Infections, 2017, 6(5): e39.
    [19] ZHU BB, WU Y, HUANG S, ZHANG RX, SON YM, LI CF, CHEON IS, GAO XC, WANG M, CHEN Y, ZHOU X, NGUYEN Q, PHAN AT, BEHL S, TAKETO MM, MACK M, SHAPIRO VS, ZENG H, EBIHARA H, MULLON JJ, et al. Uncoupling of macrophage inflammation from self-renewal modulates host recovery from respiratory viral infection[J]. Immunity, 2021, 54(6): 1200-1218.e9.
    [20] EARLY JO, MENON D, WYSE CA, CERVANTES-SILVA MP, ZASLONA Z, CARROLL RG, PALSSON-MCDERMOTT EM, ANGIARI S, RYAN DG, CORCORAN SE, TIMMONS G, GEIGER SS, FITZPATRICK DJ, O’CONNELL D, XAVIER RJ, HOKAMP K, O’NEILL L AJ, CURTIS AM. Circadian clock protein BMAL1 regulates IL-1β in macrophages via NRF2[J]. Proceedings of the National Academy of Sciences of the United States of America, 2018, 115(36): E8460-E8468.
    [21] LIU XJ, COOPER DE, CLUNTUN AA, WARMOES MO, ZHAO S, REID MA, LIU J, LUND PJ, LOPES M, GARCIA BA, WELLEN KE, KIRSCH DG, LOCASALE JW. Acetate production from glucose and coupling to mitochondrial metabolism in mammals[J]. Cell, 2018, 175(2): 502-513.e13.
    [22] LI TL, LI XH, ATTRI KS, LIU CH, LI LP, HERRING LE, ASARA JM, LEI YL, SINGH PK, GAO CJ, WEN HT. O-GlcNAc transferase links glucose metabolism to MAVS-mediated antiviral innate immunity[J]. Cell Host & Microbe, 2018, 24(6): 791-803.e6.
    [23] WANG A, HUEN SC, LUAN HH, YU S, ZHANG CL, GALLEZOT JD, BOOTH CJ, MEDZHITOV R. Opposing effects of fasting metabolism on tissue tolerance in bacterial and viral inflammation[J]. Cell, 2016, 166(6): 1512-1525.e12.
    [24] ZHANG WN, WANG GH, XU ZG, TU HQ, HU FQ, DAI J, CHANG Y, CHEN YQ, LU YJ, ZENG HL,
    Cited by
    Comments
    Comments
    分享到微博
    Submit
Get Citation

段滇宁,李雅楠,梁燕娇,黄诗婷,刘建奎,邱龙新,陈洪博. 猪繁殖与呼吸综合征病毒诱导巨噬细胞糖酵解促进病毒复制[J]. Chinese Journal of Biotechnology, 2024, 40(12): 4546-4556

Copy
Share
Article Metrics
  • Abstract:186
  • PDF: 174
  • HTML: 147
  • Cited by: 0
History
  • Received:March 31,2024
  • Online: December 25,2024
  • Published: December 25,2024
Article QR Code