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Pandolfi, P. P.

Publications and source records attributed to Pandolfi, P. P..

6 recordsLinked to original sources

Pyruvate kinase M1 suppresses development and progression of prostate adenocarcinoma

Most cancers, including prostate cancers, express the M2 splice isoform of pyruvate kinase (Pkm2). This isoform can promote anabolic metabolism to support cell proliferation; however, Pkm2 expression is dispensable for many cancers in vivo. Pyruvate kinase M1 (Pkm1) isoform expression is restricted to relatively few tissues and has been reported to promote growth of select tumors, but the role of PKM1 in cancer has been less studied. Pkm1 is expressed in normal prostate tissue; thus, to test how differential pyruvate kinase isoform expression affects cancer initiation and progression we generated mice harboring a conditional allele of Pkm1 and crossed this allele, as well as a Pkm2 conditional allele, to a Pten loss-driven prostate cancer model. We found that Pkm1 loss leads to Pkm2 expression and accelerates prostate cancer, while deletion of Pkm2 leads to increased Pkm1 expression and suppresses cancer. Consistent with these data, a small molecule pyruvate kinase activator that mimics a PKM1-like state suppresses progression of established prostate tumors. PKM2 expression is retained in most human prostate cancers, arguing that pharmacological PKM2 activation may be beneficial for some prostate cancer patients.

cancer biology

Myeloid lncRNA LOUP Mediates Opposing Regulatory Effects of RUNX1 and RUNX1-ETO in t(8;21) AML

The mechanism underlying cell type-specific gene induction conferred by ubiquitous transcription factors as well as disruptions caused by their chimeric derivatives in leukemia is not well understood. Here we investigate whether RNAs coordinate with transcription factors to drive myeloid gene transcription. In an integrated genome-wide approach surveying for gene loci exhibiting concurrent RNA- and DNA-interactions with the broadly expressed transcription factor RUNX1, we identified the long noncoding RNA LOUP. This myeloid-specific and polyadenylated lncRNA induces myeloid differentiation and inhibits cell growth, acting as a transcriptional inducer of the myeloid master regulator PU.1. Mechanistically, LOUP recruits RUNX1 to both the PU.1 enhancer and the promoter, leading to the formation of an active chromatin loop. In t(8;21) acute myeloid leukemia, wherein RUNX1 is fused to ETO, the resulting oncogenic fusion protein RUNX1-ETO limits chromatin accessibility at the LOUP locus, causing inhibition of LOUP and PU.1 expression. These findings highlight the important role of the interplay between cell type-specific RNAs and transcription factors as well as their oncogenic derivatives in modulating lineage-gene activation and raise the possibility that RNA regulators of transcription factors represent alternative targets for therapeutic development. KEY POINTSO_LIlncRNA LOUP coordinates with RUNX1 to induces PU.1 long-range transcription, conferring myeloid differentiation and inhibiting cell growth. C_LIO_LIRUNX1-ETO limits chromatin accessibility at the LOUP locus, causing inhibition of LOUP and PU.1 expression in t(8;21) AML. C_LI

cancer biology

Synthetic Antibodies neutralize SARS-CoV-2 infection of mammalian cells

Coronaviruses (CoV) are a large family of enveloped, RNA viruses that circulate in mammals and birds. Three highly pathogenic strains have caused zoonotic infections in humans that result in severe respiratory syndromes including the Middle East Respiratory Syndrome CoV (MERS), Severe Acute Respiratory Syndrome CoV (SARS), and the ongoing Coronavirus Disease 2019 (COVID-19) pandemic. Here, we describe a panel of synthetic monoclonal antibodies, built on a human IgG framework, that bind to the spike protein of SARS-CoV-2 (the causative agent of COVID-19), compete for ACE2 binding, and potently inhibit SARS-CoV-2. All antibodies that exhibited neutralization potencies at sub-nanomolar concentrations against SARS-CoV-2/USA/WA1 in Vero E6 cells, also bound to the receptor binding domain (RBD), suggesting competition for the host receptor ACE2. These antibodies represent strong immunotherapeutic candidates for treatment of COVID-19.

biochemistry

Macrophage Function is Regulated by NPM1-Mediated 2'-O-Methylation

The NPM1 gene is frequently a target of genetic alteration in hematological tumors, particularly of the myeloid lineage. Complete inactivation of Npm1 in the mouse disrupts primitive hematopoiesis and results in embryonic lethality. Npm1 heterozygosity produces features similar to those of MDS that progress to overt leukemia, and specific point mutations of Npm1 lead to bone marrow failure due to loss of hematopoietic stem cells. However, little is known about NPM1s role in mature, differentiated cells. Here we generated a conditional mouse mutant to inactivate Npm1 across the myelomonocytic lineage, and investigated its ability to influence macrophage maturation and function. We found that Npm1 is not required to maintain macrophage viability, while its loss in mature macrophages reduces production of reactive oxygen species, chemotactic properties and phagocytic capacity. Taking advantage of our recently established Npm1D180del mouse model of ribosome dysfunction and hematological disease, we identify cellular translation and rRNA 2-O-methlyation as a crucial element in controlling macrophage function. These analyses demonstrate a role for Npm1 in adult immune cells, and reveal the importance of translation regulation in macrophage function. Statement of significanceMacrophages are a major component of the immune response to various insults including to cancer. Here we show that NPM1, the most frequently mutated gene in acute myeloid leukemia, displays a critical role in macrophage function, and we identify ribosome deregulation as one of the underlying mechanisms.

cell biology

Hematopoietic p53 loss cell-extrinsically defines an immune infiltrated microenvironment in leukemia and pre-leukemia

TP53 is the most frequently mutated gene in human cancers. In Acute Myeloid Leukemia (AML) and Clonal Hematopoiesis of Indeterminate Potential (CHIP), it is one of several recurrent genetic alterations. Despite multiple recent therapeutic advances for AML, TP53 mutated AML is associated with resistance to currently approved therapies and thus, a very poor prognosis. Emerging evidence suggests that mutations in TP53 may be a predictor of positive response to immunotherapy. To model cell - extrinsic consequences of hematopoietic p53 loss, we generated bone marrow chimeric mice bearing p53-/- and congenic wild type cells. Following reconstitution, we observed increased levels of wild type CD8+ and CD4+ T cells in mice transplanted with p53-/- hematopoietic cells compared to controls. In addition, we observed a change in the frequency of T cell subsets in p53-/- chimeras including an increase in Tregs. To determine if these alterations were mirrored in the leukemic setting, we next generated p53-/-;nRasG12D leukemia. While the bone marrow of p53-/-;nRasG12D leukemia showed the presence of both T and B lymphocytes, MLL-AF9 showed a near complete absence of lymphocytes, akin to immune-infiltrated and immune-desert phenotypes seen in solid tumors. These data clearly demonstrate a causal cell-extrinsic effect of hematopoietic p53 loss on the immune system, both in the context of leukemia and preleukemic states. Modeling AML genetics in murine models serves as a powerful tool to define the association between genetic drivers and immune subtypes of AML towards precise patient stratification critical for the application of emerging targeted and immune therapies. Statement of SignificanceTP53 mutations are frequent in both AML and CHIP, and are associated with both resistance to therapy as well as very poor prognosis. We provide evidence to investigate the immunotherapy as a treatment option for this subgroup of AML.

cancer biology

Optimized RNA-targeting CRISPR/Cas13d technology outperforms shRNA in identifying essential circRNAs

Circular RNAs (circRNAs) are widely expressed, but their functions remain largely unknown. To study circRNAs in a high-throughput manner, short hairpin RNA (shRNA) screens1 have recently been used to deplete circRNAs by targeting their unique back-splicing junction (BSJ) sites. Here, we report frequent discrepancies between shRNA-mediated circRNA knockdown efficiency and the corresponding biological effect, raising pressing concerns about the robustness of shRNA screening for functional circRNAs. To address this issue, we leveraged the CRISPR/Cas13d system2 for circRNAs functional screenings. We optimized a strategy for designing single guide RNAs to deplete circRNAs. We then performed shRNA and CRISPR/Cas13d parallel screenings and demonstrated that shRNA-mediated circRNAs screening yielded a high rate of false positives phenotypes, while optimized CRISPR/Cas13d led to the identification of bona-fide functional circRNAs. Collectively, we developed a specific and reliable approach to functionalize circRNAs in a high-throughput manner.

molecular biology