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Llewellyn-Lacey, S.

Publications and source records attributed to Llewellyn-Lacey, S..

6 recordsLinked to original sources

Altered basal lipid metabolism underlies the functional impairment of naive CD8+ T cells in elderly humans

BackgroundAging is associated with functional deficits in the naive T cell compartment, which compromise the generation of de novo immune responses against previously unencountered antigens. The mechanisms that underlie this phenomenon have nonetheless remained unclear. MethodsBiochemical and functional properties of naive CD8+ T cells were characterized and compared between middle aged and older individuals. FindingsWe identified an age-related link between altered basal lipid metabolism in naive CD8+ T cells and their impaired responsiveness to stimulation, characterized by low proliferative potential and susceptibility to apoptosis. Reversal of the bioenergetic anomalies with lipid-altering drugs, such as rosiglitazone, improved the functional capabilities of naive CD8+ T cells in elderly subjects. InterpretationInterventions that favor lipid catabolism may find utility as adjunctive therapies in the elderly to promote vaccine-induced immunity against emerging pathogens or tumors. FundingA full list of the funding sources is detailed in the Acknowledgment section of the manuscript. RESEARCH IN CONTEXTO_ST_ABSEvidence before this studyC_ST_ABSOld subjects are highly susceptible to infections and tumors and usually present with low responses to vaccine. This is mainly due to the age-related loss of primary immune resources, i.e. a quantitative decline of naive CD8+ T cells. Nonetheless, few studies have also underlined, within this cell subset, qualitative defects in elderly subjects. Added value of this studyConsidering the well-demonstrated link between nutrient usage and lymphocyte functions, we characterized the bioenergetics features of old naive CD8+ T cells. Our data show an age-dependent altered basal metabolism in this cell subset, mostly at the levels of fatty acids and mitochondrial functions. These alterations were associated with functional defects which were partially reverted through the use of lipid-lowering strategies. Implications of all the available evidenceThis study highlights the potential role of an altered cellular lipid metabolism in immunosenescence, providing clues to understand the epidemiological profile of emerging infections or tumors and to develop preventive and therapeutic strategies based on metabolic manipulation.

immunology

CD8 coreceptor-mediated focusing can reorder the agonist hierarchy of peptide ligands recognized via the T cell receptor

CD8+ T cells are inherently cross-reactive and recognize numerous peptide antigens in the context of a given major histocompatibility complex class I (MHCI) molecule via the clonotypically expressed T cell receptor (TCR). The lineally expressed coreceptor CD8 interacts coordinately with MHCI at a distinct and largely invariant site to slow the TCR/peptide-MHCI (pMHCI) dissociation rate and enhance antigen sensitivity. However, this biological effect is not necessarily uniform, and theoretical models suggest that antigen sensitivity can be modulated in a differential manner by CD8. We used an intrinsically controlled system to determine how the relationship between the TCR/pMHCI interaction and the pMHCI/CD8 interaction affects the functional sensitivity of antigen recognition. Our data show that modulation of the pMHCI/CD8 interaction can reorder the agonist hierarchy of peptide ligands across a spectrum of affinities for the TCR. SIGNIFICANCESufficient immune coverage of the peptide universe within a finite host requires highly degenerate T cell receptors (TCRs). However, this inherent need for antigen cross-recognition is associated with a high risk of autoimmunity, which can only be mitigated by a process of adaptable specificity. We describe a mechanism that resolves this conundrum by allowing individual clonotypes to focus on specific peptide ligands without alterations to the structure of the TCR.

immunology

Ex vivo detection of SARS-CoV-2-specific CD8+ T cells: rapid induction, prolonged contraction, and formation of functional memory

CD8+ T cells are critical for the elimination and long-lasting protection of many viral infections, but their role in the current SARS-CoV-2 pandemic is unclear. Emerging data indicates that SARS-CoV-2-specific CD8+ T cells are detectable in the majority of individuals recovering from SARS-CoV-2 infection. However, optimal virus-specific epitopes, the role of pre-existing heterologous immunity as well as their kinetics and differentiation program during disease control have not been defined in detail. Here, we show that both pre-existing and newly induced SARS-CoV-2-specific CD8+ T-cell responses are potentially important determinants of immune protection in mild SARS-CoV-2 infection. In particular, our results can be summarized as follows: First, immunodominant SARS-CoV-2-specific CD8+ T-cell epitopes are targeted in the majority of individuals with convalescent SARS-CoV-2 infection. Second, MHC class I tetramer analyses revealed the emergence of phenotypically diverse and functionally competent pre-existing and newly induced SARS-CoV-2-specific memory CD8+ T cells that showed similar characteristics compared to influenza-specific CD8+ T cells. Third, SARS-CoV-2-specific CD8+ T-cell responses are more robustly detectable than antibodies against the SARS-CoV-2-spike protein. This was confirmed in a longitudinal analysis of acute-resolving infection that demonstrated rapid induction of the SARS-CoV-2-specific CD8+ T cells within a week followed by a prolonged contraction phase that outlasted the waning humoral immune response indicating that CD8+ T-cell responses might serve as a more precise correlate of antiviral immunity than antibody measurements after convalescence. Collectively, these data provide new insights into the fine specificity, heterogeneity, and dynamics of SARS-CoV-2-specific memory CD8+ T cells, potentially informing the rational development of a protective vaccine against SARS-CoV-2.

immunology

The identity of human tissue-emigrant CD8+ T cells

Lymphocyte migration is essential for human adaptive immune surveillance. However, our current understanding of this process is rudimentary, because most human studies to date have been restricted to immunological analyses of blood and various tissues. To address this issue, we used an integrated approach to characterize tissue-emigrant immune cells in thoracic duct lymph (TDL). In humans and non-human primates, lymphocytes were by far the most abundant immune lineage population in efferent lymph, and a vast majority of these lymphocytes were T cells. Cytolytic CD8+ T cell subsets were clonotypically discrete and selectively confined to the intravascular circulation, persisting for months after inhibition of S1P-dependent tissue egress by FTY-720. In contrast, non-cytolytic CD8+ T cell subsets with stem-like epigenetic and transcriptional signatures predominated in tissues and TDL. Collectively, these data provide an atlas of the migratory immune system and define the nature of tissue-emigrant CD8+ T cells that recirculate via TDL.

immunology

Robust T cell immunity in convalescent individuals with asymptomatic or mild COVID-19

ABSTRACTSARS-CoV-2-specific memory T cells will likely prove critical for long-term immune protection against COVID-19. We systematically mapped the functional and phenotypic landscape of SARS-CoV-2-specific T cell responses in a large cohort of unexposed individuals as well as exposed family members and individuals with acute or convalescent COVID-19. Acute phase SARS-CoV-2-specific T cells displayed a highly activated cytotoxic phenotype that correlated with various clinical markers of disease severity, whereas convalescent phase SARS-CoV-2-specific T cells were polyfunctional and displayed a stem-like memory phenotype. Importantly, SARS-CoV-2-specific T cells were detectable in antibody-seronegative family members and individuals with a history of asymptomatic or mild COVID-19. Our collective dataset shows that SARS-CoV-2 elicits robust memory T cell responses akin to those observed in the context of successful vaccines, suggesting that natural exposure or infection may prevent recurrent episodes of severe COVID-19 also in seronegative individuals.Competing Interest StatementThe authors have declared no competing interest.View Full Text

immunology

Identification of a lymphocyte minor histocompatibility antigen in Mauritian cynomolgus macaques

Allogeneic hematopoietic stem cell transplantation can lead to dramatic reductions in human immunodeficiency virus (HIV) reservoirs. This effect is mediated in part by donor T cells that recognize lymphocyte-expressed minor histocompatibility antigens (mHAgs). The potential to mark malignant and latently infected cells for destruction makes mHAgs attractive targets for cellular immunotherapies. However, testing such HIV reservoir reduction strategies will likely require preclinical studies in nonhuman primates (NHPs). In this study, we used a combination of alloimmunization, whole exome sequencing, and bioinformatics to identify a mHAg in Mauritian cynomolgus macaques (MCMs). We mapped the minimal optimal epitope to a 10-mer peptide (SW10) in apolipoprotein B mRNA editing enzyme catalytic polypeptide-like 3C (APOBEC3) and determined the major histocompatibility complex class I restriction element as Mafa-A1*063, which is expressed in almost 90% of MCMs. APOBEC3C SW10-specific CD8+ T cells recognized immortalized B cells but not fibroblasts from a mHAg positive MCM. These results collectively provide a framework for identifying mHAgs in a nontransplant setting and suggest that APOBEC3C SW10 could be used as a lymphocyte-restricted model antigen in NHPs to test various mHAg-targeted immunotherapies. ImportanceCellular immunotherapies developed to treat blood cancers may also be effective against latent HIV. Preclinical studies of such immunotherapies are hindered by a lack of known target antigens. We used a combination of alloimmunization, basic immune assays, whole exome sequencing, and bioinformatics to identify a lymphocyte-restricted minor histocompatibility antigen in a genetically related population of nonhuman primates. This minor histocompatibility antigen provides an actionable target for piloting cellular immunotherapies designed to reduce or eliminate latent reservoirs of HIV.

immunology