Mantle cell lymphoma (MCL) is a B-cell non-Hodgkin lymphoma characterized by heterogeneous clinical courses despite a common pathobiological initiating event. In this work we explore the genomic variants that characterize MCL and integrate transcriptomic data to comprehensively describe MCL biology. We performed whole exome sequencing (WES) on 28 tumor-normal pairs (lymph node and skin, respectively), as well as whole genome sequencing (WGS) and RNA sequencing on subsets of samples. We used established DNA and RNA analysis pipelines to detect single-nucleotide variants (SNV) and indels, structural variants, copy-number alterations, and RNA fusions. The canonical t(11;14)(q13;q32) CCND1::IGH translocation was detected in 8 of 10 WGS samples. Structural variant analysis additionally identified recurrent rearrangements involving KMT2A and PAFAH1B2. SNV and indel analyses revealed frequent mutations in ATM, TP53, CCND1, IGH, and NOTCH1. ATM exhibited diverse variant classes, including missense mutations, frameshift mutations, deletions, and duplications, while all detected NOTCH1 mutations were predicted loss-of-function frameshift variants. Copy-number analysis identified recurrent losses affecting DNA damage response genes, including TP53 and ATM, and recurrent gains involving transcriptional regulators and oncogenic signaling genes. Integrated pathway analysis demonstrated enrichment of transcriptional misregulation, DNA repair, PI3K/AKT signaling, and interleukin signaling pathways. We also identified recurrent alterations in candidate genes, including ASXL1, suggesting additional mechanisms of epigenetic dysregulation in MCL. Together, these findings provide a comprehensive description of somatic alterations in MCL and demonstrate that diverse genomic lesions converge on common pathways involved in genomic instability, transcriptional regulation, and tumor survival.
Charlz Nithin Jerold, Brian V. Li, Matthew Mosior et al.· medRxiv· 0 citations
Personalized neoantigen (neoAg) vaccines have shown clinical promise in solid tumors1–8, yet their efficacy and mechanism of action in hematopoietic malignancies remain poorly defined9–11. Herein, we establish an immunocompetent syngeneic A20 B-cell lymphoma platform to test the efficacy of neoAg vaccines used either as mono- or combinatorial therapies with other immunotherapies12–17. Whereas subcutaneous A20 tumors were refractory to single-agent αPD-1 or αCTLA4 therapy, they were eradicated in a T cell-dependent manner in 90% of syngeneic hosts treated with dual immune checkpoint therapy (dual ICT, i.e., αPD-1 + αCTLA4). By mapping antigen specificity of dual-ICT-elicited T cells, we identified and validated dominant endogenous A20 MHC-I and MHC-II neoantigens and designed therapeutic synthetic long peptide (SLP) vaccines containing these neoepitopes. This vaccine (A20 neoVAX) promoted robust neoAg-specific CD4□ and CD8□ T cell responses in naïve syngeneic BALB/c mice and induced tumor rejection in ∼70% of subcutaneous tumor-bearing mice. In addition, nearly all mice rejected their subcutaneous A20 tumors when A20 neoVAX was combined with αPD-1. To render the results of this study more physiologic, we developed a systemic A20 lymphoma model and found that dual ICT failed to control tumor progression and A20 neoVAX delayed tumor progression and prolonged animal survival but did not induce tumor rejection. In contrast, A20 neoVAX plus dual ICT achieved durable systemic tumor elimination. Mechanistically, the combination of A20 neoVAX plus dual ICT amplified priming of A20 neoAg-specific T cells, prevented T cell dysfunction, sustained the cytotoxic capacity of tumor-specific CD8+ T cells, and induced Th1-skewing of CD4+ T cells in tumor and peripheral compartments. To increase the clinical relevance of these findings and to minimize potential adverse events in tumor-bearing, therapeutically treated individuals, we substituted CD8-targeted cytokine muteins (CD8-IL2 or CD8-IL21) for αCTLA4. These agents represent genetically modified forms of IL-2 or IL-21 that selectively stimulate CD8+ T cells but have significantly reduced capacity to activate chronic inflammation and immunosuppressive functions of other immune cells. Whereas mice bearing systemic A20 lymphoma treated with either nothing, A20 neoVAX, or A20 neoVAX + CD8-IL2 failed to control tumor outgrowth, 66.7% of tumor-bearing mice treated with A20 neoVAX + CD8-IL2 + αPD-1 rejected their tumors. In similar experiments in which CD8-IL21 was substituted for CD8-IL2, tumor clearance was also observed in two-thirds of A20-bearing mice but now rejection occurred in the absence of αPD1. Together, these data define a framework for optimal personalized neoAg vaccination in B-lymphoma and demonstrate that neoAg vaccines can safely synergize with CD8+ T cell-selective immunotherapies to prevent T-cell dysfunction and generate durable systemic anti-tumor immunity.
Yuang Song, E. Aladyeva, Ruan F. Vieira Medrano et al.· bioRxiv· 0 citations
TrioMix-UPD, an integrated short- and long-read sequencing framework for UPD detection and classification, is developed and established UPD as an underrecognized contributor to CHD.
Nahyun Kong, Javier Abello, Christopher J. Yoon et al.· Research Square· 0 citations
We use cookies to run the site and, with your consent, for analytics and to show ads.
See our Cookie Policy.