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FcRγ- NK cell induction by specific CMV and expansion by subclinical viral infections in rhesus macaques

Lee, J.; Chang, W.; Scott, J. M.; Hong, S.; Lee, T.; Deere, J. D.; Park, P.; Sparger, E. E.; Dandekar, S.; Hartigan-O'Connor, D.; Barry, P. A.; Kim, S.

2022-05-27 immunology
10.1101/2022.05.26.493509 bioRxiv
Show abstract

Long-lived memory-like NK cells, characterized by FcR{gamma}-deficiency and enhanced responsiveness to antibody-bound virus-infected cells, have been found in certain human cytomegalovirus (HCMV)-seropositive individuals. Because humans are exposed to numerous microbes and environmental agents, specific relationships between HCMV and FcR{gamma}-deficient NK cells (also known as g-NK cells) have been challenging to define. Here, we show that a subgroup of rhesus cytomegalovirus (RhCMV)-seropositive macaques possesses FcR{gamma}-deficient NK cells that stably persist and display phenotype resembling human FcR{gamma}-deficient NK cells. Moreover, these macaque NK cells resembled human FcR{gamma}-deficient NK cells with respect to functional characteristics, including enhanced responsiveness to RhCMV-infected target in an antibody-dependent manner and hypo-responsiveness to tumor and cytokine stimulation. These cells were not detected in specific-pathogen-free (SPF) macaques free of RhCMV and six other viruses; however, experimental infection of SPF animals with RhCMV strain UCD59, but not RhCMV strain 68-1 or SIV, led to induction of FcR{gamma}-deficient NK cells. In non-SPF macaques, co-infection by RhCMV with other common viruses was associated with higher frequencies of FcR{gamma}-deficient NK cells. These results support a causal role for specific cytomegalovirus strain(s) in the induction of FcR{gamma}-deficient NK cells, and suggest that co-infection by other viruses further expands this memory-like NK cell pool.

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