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Published on: March 1, 2019
A Potent Postentry Restriction to Primate Lentiviruses in a Yinpterochiropteran Bat
James H Morrison1, Caitlin Miller1, Laura Bankers1
1Division of Infectious Diseases, University of Colorado, Aurora, Colorado, USA.
Abstract:
Bats are primary reservoirs for multiple lethal human viruses, such as Ebola, Nipah, Hendra, rabies, severe acute respiratory syndrome coronavirus (SARS-CoV), Middle East respiratory syndrome-related coronavirus (MERS-CoV), and, most recently, SARS-CoV-2. The innate immune systems of these immensely abundant, anciently diverged mammals remain insufficiently characterized. While bat genomes contain many endogenous retroviral elements indicative of past exogenous infections, little is known about restrictions to extant retroviruses. Here, we describe a major postentry restriction in cells of the yinpterochiropteran bat Pteropus alecto Primate lentiviruses (HIV-1, SIVmac) were potently blocked at early life cycle steps, with up to 1,000-fold decreases in infectivity. The block was specific, because nonprimate lentiviruses such as equine infectious anemia virus and feline immunodeficiency virus were unimpaired, as were foamy retroviruses. Interspecies heterokaryons demonstrated a dominant block consistent with restriction of incoming viruses. Several features suggested potential TRIM5 (tripartite motif 5) or myxovirus resistance protein 2 (MX2) protein restriction, including postentry action, cyclosporine sensitivity, and reversal by capsid cyclophilin A (CypA) binding loop mutations. Viral nuclear import was significantly reduced, and this deficit was substantially rescued by cyclosporine treatment. However, saturation with HIV-1 virus-like particles did not relieve the restriction at all. P. alecto TRIM5 was inactive against HIV-1 although it blocked the gammaretrovirus N-tropic murine leukemia virus. Despite major divergence in a critical N-terminal motif required for human MX2 activity, P. alecto MX2 had anti-HIV activity. However, this did not quantitatively account for the restriction and was independent of and synergistic with an additional CypA-dependent restriction. These results reveal a novel, specific restriction to primate lentiviruses in the Pteropodidae and advance understanding of bat innate immunity.IMPORTANCE The COVID-19 pandemic suggests that bat innate immune systems are insufficiently characterized relative to the medical importance of these animals. Retroviruses, e.g., HIV-1, can be severe pathogens when they cross species barriers, and bat restrictions corresponding to retroviruses are comparatively unstudied. Here, we compared the abilities of retroviruses from three genera (Lentivirus, Gammaretrovirus, and Spumavirus) to infect cells of the large fruit-eating bat P. alecto and other mammals. We identified a major, specific postentry restriction to primate lentiviruses. HIV-1 and SIVmac are potently blocked at early life cycle steps, but nonprimate lentiviruses and foamy retroviruses are entirely unrestricted. Despite acting postentry and in a CypA-dependent manner with features reminiscent of antiretroviral factors from other mammals, this restriction was not saturable with virus-like particles and was independent of P. alecto TRIM5, TRIM21, TRIM22, TRIM34, and MX2. These results identify a novel restriction and highlight cyclophilin-capsid interactions as ancient species-specific determinants of retroviral infection.
Insights
Bats possess a novel innate immunity mechanism that restricts primate lentiviruses like HIV-1. This discovery enhances our understanding of bat antiviral defenses and potential zoonotic disease transmission risks.
Area of Science:
- Virology
- Immunology
- Mammalian Genetics
Background:
- Bats are reservoirs for numerous lethal human viruses, including coronaviruses and retroviruses.
- Bat innate immune systems are crucial for understanding zoonotic disease emergence but remain poorly characterized.
- Existing knowledge on bat restrictions to extant retroviruses is limited, despite genomic evidence of past infections.
Purpose of the Study:
- To characterize the innate immune restrictions in the yinpterochiropteran bat *Pteropus alecto* against primate lentiviruses.
- To investigate the mechanisms underlying these restrictions, including the roles of TRIM5 and MX2 proteins.
- To identify novel antiviral factors and understand their evolutionary significance in bat immunity.
Main Methods:
- Infecting *P. alecto* cells with various lentiviruses (HIV-1, SIVmac) and nonprimate retroviruses (EIAV, FIV, foamy viruses).
- Utilizing interspecies heterokaryons to assess dominant restriction factors.
- Employing cyclosporine treatment and analyzing viral nuclear import and capsid cyclophilin A (CypA) binding loop mutations.
- Testing the activity of *P. alecto* TRIM5 and MX2 proteins against different retroviruses.
Main Results:
- *P. alecto* cells exhibited a potent, specific postentry restriction against primate lentiviruses (HIV-1, SIVmac), reducing infectivity by up to 1,000-fold.
- Nonprimate lentiviruses and foamy retroviruses were unimpaired, indicating a specific restriction.
- The restriction involved reduced viral nuclear import, was cyclosporine-sensitive, and partially dependent on CypA-capsid interactions.
- *P. alecto* TRIM5 was inactive against HIV-1 but restricted a gammaretrovirus; *P. alecto* MX2 showed some anti-HIV activity, but did not fully account for the observed restriction.
Conclusions:
- A novel, specific postentry restriction targeting primate lentiviruses exists in *Pteropus alecto* bats.
- This restriction is distinct from known TRIM5 and MX2 activities and highlights the importance of CypA-capsid interactions in interspecies retroviral barriers.
- Understanding these bat-specific restrictions is vital for assessing zoonotic risks and developing antiviral strategies.

