Search bioRxiv⌕ Search

Biology subjects

Zapata, H.

Publications and source records attributed to Zapata, H..

3 recordsLinked to original sources

Borrelia Burgdorferi binds Serum Amyloid A and Modulates Subcutaneous Adipose Tissue Immune Signaling

Borrelia burgdorferi causes over 470,000 infections annually [1]. Following a tick bite, Borrelia spirochetes replicate in human skin and disseminate through tissues, including subcutaneous adipose tissue. Adipose tissue is a complex organ containing non-immune and immune cells that play a significant role in the immune response [2], yet little is known about adipose tissue signaling after Borrelia infection. We investigated the landscape of immune signaling within adipose tissue-resident cells during Borrelia infection in human tissue (skin and adipose tissue) ex vivo. Immune pathways overall were downregulated in adipose tissue during Borrelia infection. Despite this, adipose stem/progenitor cells exhibited increased pro-inflammatory and extracellular matrix (ECM)-related signaling (IL-6, MIF, collagen, laminin, fibronectin), positioning them as key hubs of intercellular communication during infection. Myeloid lineage cells showed cluster-specific upregulation of immune genes such as IL1B and TNF. Network analyses highlighted laminin, and strong outgoing MIF signals in all adipose-resident cell clusters. Among the identified genes modulated after Borrelia infection, we observed reduced expression levels of serum amyloid A in adipose tissue-resident cells, a marker typically elevated in Lyme disease patient serum during acute infection. Here, we show that human serum amyloid A1 and serum amyloid A2 directly bind B. burgdorferi spirochetes, using flow cytometry. Functionally, serum amyloid A2 reduces spirochete viability in vitro in a dose-dependent manner and enhances opsonization and phagocytosis by macrophages. Together, these findings show that adipose tissue is a site of active immune signaling in the setting of Borrelia infection and identifies SAA as a host defense factor against Borrelia.

immunology↗

The dynamics of ciliogenesis in prepubertal mouse meiosis reveal new clues about testicular maturation during puberty

The primary cilium, a solitary and non-motile extension of the plasma membrane, has recently been identified in adult male mouse spermatocytes. However, very little is known about when these cilia emerge during testicular maturation and what their function is. In the context of fertility establishment during puberty, this study investigates the dynamics of ciliogenesis in prepubertal mouse spermatocytes. Our findings reveal that primary cilia are not an intrinsic feature of spermatocytes during the first wave of meiosis, which initiates at 8 days post-partum (dpp). Instead, cilia begin polymerizing at 20 dpp, after first meiotic wave has been completed, and are present in spermatocytes across all stages of prophase I. Thus, no direct correlation between cilia polymerization and the initiation of synapsis or desynapsis was found, although chemical ablation of cilia may delay DNA repair during prophase I. Typical adult cilia features, which are shorter and restricted to zygotene spermatocytes, are settled upon acquisition of sexual maturity. This study also highlights that the emergence of ciliated spermatocytes in prepuberal mice coincides with the onset of flagellogenesis, hinting at a potential link between the regulation of the formation of both types of axonemes within the tissue developing environment. Proteomic analyses further identify temporal regulators of axoneme assembly, providing valuable targets for future research to unravel the molecular pathways underlying ciliogenesis, flagellogenesis, and their roles in spermatogenesis. We explored distinct regulatory mechanisms of ciliogenesis during the first meiotic wave and found that Aurora kinase A (AURKA) is a critical regulator of cilia disassembly during late diplotene, with evidence suggesting that centrosome migration and cilia depolymerization are mutually exclusive events during meiosis. In summary, this study provides the first detailed characterization of primary cilia dynamics during early testicular maturation in mice, revealing their spatiotemporal regulation, candidate molecular mediators, and potential roles during meiosis. These findings lay the groundwork for understanding the physiological relevance of meiotic cilia in spermatogenesis and testicular development.

cell biology↗

Dectin-1 Stimulation Promotes a Distinct Inflammatory Signature in the Setting of HIV-infection and Aging

Dectin-1 is an innate immune receptor that recognizes and binds {beta}-1,3/1,6 glucans on fungi. We evaluated Dectin-1 function in myeloid cells in a cohort of HIV-positive and HIV-negative young and older adults. Stimulation of monocytes with {beta}-D-glucans induced a pro-inflammatory phenotype in monocytes of HIV-infected individuals that was characterized by increased levels of IL-12, TNF-, and IL-6, with some age-associated cytokine increases also noted. Dendritic cells showed a striking HIV-associated increase in IFN- production. These increases in cytokine production paralleled increases in Dectin-1 surface expression in both monocytes and dendritic cells that were noted with both HIV and aging. Differential gene expression analysis showed that HIV-positive older adults had a distinct gene signature compared to other cohorts characterized by a robust TNF- and coagulation response (increased at baseline), a persistent IFN- and IFN-{gamma} response, and an activated dendritic cell signature/M1 macrophage signature upon Dectin-1 stimulation. Dectin-1 stimulation induced a strong upregulation of MTORC1 signaling in all cohorts, although increased in the HIV-Older cohort (stimulation and baseline). Overall, our study demonstrates that the HIV Aging population has a distinct immune signature in response to Dectin-1 stimulation. This signature may contribute to the pro-inflammatory environment that is associated with HIV and Aging.

immunology↗