Tick-borne encephalitis virus modulates sphingolipid and phospholipid metabolism in infected human neuronal cells

被引:0
作者
Simeckova, Pavlina [1 ]
Slavik, Josef [1 ]
Fortova, Andrea [1 ,2 ]
Huvarova, Ivana [1 ,2 ]
Kralikova, Lucie [1 ]
Stefanik, Michal [2 ,4 ]
Svoboda, Pavel [2 ,3 ,5 ]
Ruzek, Daniel [2 ,3 ,6 ]
Machala, Miroslav [1 ]
机构
[1] Vet Res Inst, Dept Pharmacol & Toxicol, Brno, Czech Republic
[2] Vet Res Inst, Lab Emerging Viral Dis, Brno, Czech Republic
[3] Czech Acad Sci, Inst Parasitol, Biol Ctr, Ceske Budejovice 37005, Czech Republic
[4] Mendel Univ Brno, Dept Chem & Biochem, Brno, Czech Republic
[5] Univ Vet Sci Brno, Fac Vet Med, Brno, Czech Republic
[6] Masaryk Univ, Fac Sci, Dept Expt Biol, Brno, Czech Republic
关键词
Tick -borne encephalitis virus; Human neuronal cells; Sphingolipids; Targeted lipidomics; 4-HPR; Fenretinide; VIRAL REPLICATION; ACTIVATION; STRESS; EXPRESSION; TARGET;
D O I
10.1016/j.micinf.2024.105303
中图分类号
R392 [医学免疫学]; Q939.91 [免疫学];
学科分类号
100102 ;
摘要
The life cycle of enveloped viruses is closely linked to host-cell lipids. However, changes in lipid metabolism during infections with the tick-borne encephalitis virus (TBEV) have not been described. TBEV is a medically important orthoflavivirus, which is endemic to many parts of Europe and Asia. In the present study, we performed targeted lipidomics with HPLC-MS/MS to evaluate changes in phospholipid and sphingolipid concentrations in TBEV-infected human neuronal SK-N-SH cells. TBEV infections significantly increased phosphatidylcholine, phosphatidylinositol, and phosphatidylserine levels within 48 h post-infection (hpi). Sphingolipids were slightly increased in dihydroceramides within 24 hpi. Later, at 48 hpi, the contents of sphinganine, dihydroceramides, ceramides, glucosylceramides, and ganglioside GD3 were elevated. On the other hand, sphingosine-1-phosphate content was slightly reduced in TBEVinfected cells. Changes in sphingolipid concentrations were accompanied by suppressed expression of a majority of the genes linked to sphingolipid and glycosphingolipid metabolism. Furthermore, we found that a pharmacological inhibitor of sphingolipid synthesis, fenretinide (4-HPR), inhibited TBEV infections in SK-N-SH cells. Taken together, our results suggested that both structural and signaling functions of lipids could be affected during TBEV infections. These changes might be connected to virus propagation and/or host-cell defense. (c) 2024 The Authors. Published by Elsevier Masson SAS on behalf of Institut Pasteur. This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
引用
收藏
页数:11
相关论文
共 50 条
  • [31] Neutrophil Apoptosis Induction by Tick-Borne Encephalitis Virus
    Plekhova, N. G.
    Somova, L. M.
    Lyapun, I. N.
    Krylova, N. V.
    Leonova, G. N.
    [J]. BULLETIN OF EXPERIMENTAL BIOLOGY AND MEDICINE, 2012, 153 (01) : 105 - 108
  • [32] Continued expansion of tick-borne pathogens: Tick-borne encephalitis virus complex and Anaplasma phagocytophilum in Denmark
    Andersen, Nanna Skaarup
    Larsen, Sanne Lokkegaard
    Olesen, Carsten Riis
    Stiasny, Karin
    Kolmos, Hans Jorn
    Jensen, Per Moestrup
    Skarphedinsson, Sigurdur
    [J]. TICKS AND TICK-BORNE DISEASES, 2019, 10 (01) : 115 - 123
  • [33] Human laminin binding protein as a cell receptor for the tick-borne encephalitis virus
    Protopopova, EV
    Sorokin, AV
    Konovalova, SN
    Kachko, AV
    Netesov, SV
    Loktev, VB
    [J]. ZENTRALBLATT FUR BAKTERIOLOGIE-INTERNATIONAL JOURNAL OF MEDICAL MICROBIOLOGY VIROLOGY PARASITOLOGY AND INFECTIOUS DISEASES, 1999, 289 (5-7): : 632 - 638
  • [34] Analysis of tick-borne encephalitis virus-induced host responses in human cells of neuronal origin and interferon-mediated protection
    Selinger, Martin
    Wilkie, Gavin S.
    Tong, Lily
    Gu, Quan
    Schnettler, Esther
    Grubhoffer, Libor
    Kohl, Alain
    [J]. JOURNAL OF GENERAL VIROLOGY, 2017, 98 (08) : 2043 - 2060
  • [35] Seroepidemiological surveys of tick-borne encephalitis virus and novel tick-borne viruses in wild boar in Nagasaki, Japan
    Luvai, Elizabeth Ajema Chebichi
    Uchida, Leo
    Tun, Mya Myat Ngwe
    Inoue, Shingo
    Hu Weiyin
    Shimoda, Hiroshi
    Morita, Kouichi
    Hayasaka, Daisuke
    [J]. TICKS AND TICK-BORNE DISEASES, 2022, 13 (01)
  • [36] The Prevalence of Asymptomatic Infections with Tick-Borne Encephalitis Virus and Attitude towards Tick-Borne Encephalitis Vaccine in the Endemic Area of Northeastern Poland
    Bojkiewicz, Ewa
    Toczylowski, Kacper
    Grygorczuk, Sambor
    Zelazowska-Rutkowska, Beata
    Dunaj, Justyna
    Zebrowska, Agnieszka
    Czupryna, Piotr
    Moniuszko-Malinowska, Anna
    Sulik, Artur
    [J]. VACCINES, 2022, 10 (08)
  • [37] Antibodies protect mice against challenge with tick-borne encephalitis virus (TBEV)-infected macrophages
    Kreil, TR
    Burger, I
    Bachmann, M
    Fraiss, S
    Eibl, MM
    [J]. CLINICAL AND EXPERIMENTAL IMMUNOLOGY, 1997, 110 (03) : 358 - 361
  • [38] Survival of Tick-Borne Encephalitis Virus in Goat Cheese and Milk
    Ronai, Zsuzsanna
    Egyed, Laszlo
    [J]. FOOD AND ENVIRONMENTAL VIROLOGY, 2020, 12 (03) : 264 - 268
  • [39] Bioluminescent detection probe for tick-borne encephalitis virus immunoassay
    Ludmila P. Burakova
    Alexander N. Kudryavtsev
    Galina A. Stepanyuk
    Ivan K. Baykov
    Vera V. Morozova
    Nina V. Tikunova
    Maria A. Dubova
    Victor N. Lyapustin
    Valeri V. Yakimenko
    Ludmila A. Frank
    [J]. Analytical and Bioanalytical Chemistry, 2015, 407 : 5417 - 5423
  • [40] Innate and adaptive immunity in wild rodents spontaneously and experimentally infected with the tick-borne encephalitis virus
    Morozova, Olga, V
    Panov, Victor V.
    Bakhvalova, Valentina N.
    [J]. INFECTION GENETICS AND EVOLUTION, 2020, 80