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MMD-associated RNF213 SNPs encode dominant-negative alleles that globally impair ubiquitylation

Bhardwaj, Abhishek; Banh, Robert S; Zhang, Wei; Sidhu, Sachdev S; Neel, Benjamin G
Single-nucleotide polymorphisms (SNPs) in RNF213, which encodes a 591-kD protein with AAA+ ATPase and RING E3 domains, are associated with a rare, autosomal dominant cerebrovascular disorder, moyamoya disease (MMD). MMD-associated SNPs primarily localize to the C-terminal region of RNF213, and some affect conserved residues in the RING domain. Although the autosomal dominant inheritance of MMD could most easily explained by RNF213 gain-of-function, the type of ubiquitylation catalyzed by RNF213 and the effects of MMD-associated SNPs on its E3 ligase activity have remained unclear. We found that RNF213 uses the E2-conjugating enzymes UBE2D2 and UBE2L3 to catalyze distinct ubiquitylation events. RNF213-UBED2 catalyzes K6 and, to a lesser extent, K48-dependent poly-ubiquitylation in vitro, whereas RNF213-UBE2L3 catalyzes K6-, K11-, and K48-dependent poly-ubiquitylation events. MMD-associated SNPs encode proteins with decreased E3 activity, and the most frequent MMD allele, RNF213
PMID: 35135845
ISSN: 2575-1077
CID: 5156772

The polar oxy-metabolome reveals the 4-hydroxymandelate CoQ10 synthesis pathway

Banh, Robert S; Kim, Esther S; Spillier, Quentin; Biancur, Douglas E; Yamamoto, Keisuke; Sohn, Albert S W; Shi, Guangbin; Jones, Drew R; Kimmelman, Alec C; Pacold, Michael E
Oxygen is critical for a multitude of metabolic processes that are essential for human life. Biological processes can be identified by treating cells with 18O2 or other isotopically labelled gases and systematically identifying biomolecules incorporating labeled atoms. Here we labelled cell lines of distinct tissue origins with 18O2 to identify the polar oxy-metabolome, defined as polar metabolites labelled with 18O under different physiological O2 tensions. The most highly 18O-labelled feature was 4-hydroxymandelate (4-HMA). We demonstrate that 4-HMA is produced by hydroxyphenylpyruvate dioxygenase-like (HPDL), a protein of previously unknown function in human cells. We identify 4-HMA as an intermediate involved in the biosynthesis of the coenzyme Q10 (CoQ10) headgroup in human cells. The connection of HPDL to CoQ10 biosynthesis provides crucial insights into the mechanisms underlying recently described neurological diseases related to HPDL deficiencies1-4 and cancers with HPDL overexpression5.
PMID: 34471290
ISSN: 1476-4687
CID: 4989322

Autophagy is required for proper cysteine homeostasis in pancreatic cancer through regulation of SLC7A11

Mukhopadhyay, Subhadip; Biancur, Douglas E; Parker, Seth J; Yamamoto, Keisuke; Banh, Robert S; Paulo, Joao A; Mancias, Joseph D; Kimmelman, Alec C
Pancreatic ductal adenocarcinoma (PDAC) is one of the deadliest forms of cancer and is highly refractory to current therapies. We had previously shown that PDAC can utilize its high levels of basal autophagy to support its metabolism and maintain tumor growth. Consistent with the importance of autophagy in PDAC, autophagy inhibition significantly enhances response of PDAC patients to chemotherapy in two randomized clinical trials. However, the specific metabolite(s) that autophagy provides to support PDAC growth is not yet known. In this study, we demonstrate that under nutrient-replete conditions, loss of autophagy in PDAC leads to a relatively restricted impairment of amino acid pools, with cysteine levels showing a significant drop. Additionally, we made the striking discovery that autophagy is critical for the proper membrane localization of the cystine transporter SLC7A11. Mechanistically, autophagy impairment results in the loss of SLC7A11 on the plasma membrane and increases its localization at the lysosome in an mTORC2-dependent manner. Our results demonstrate a critical link between autophagy and cysteine metabolism and provide mechanistic insights into how targeting autophagy can cause metabolic dysregulation in PDAC.
PMID: 33531365
ISSN: 1091-6490
CID: 4776332

Functional Genomics Identifies Metabolic Vulnerabilities in Pancreatic Cancer

Biancur, Douglas E; Kapner, Kevin S; Yamamoto, Keisuke; Banh, Robert S; Neggers, Jasper E; Sohn, Albert S W; Wu, Warren; Manguso, Robert T; Brown, Adam; Root, David E; Aguirre, Andrew J; Kimmelman, Alec C
Pancreatic ductal adenocarcinoma (PDA) is a deadly cancer characterized by complex metabolic adaptations that promote survival in a severely hypoxic and nutrient-limited tumor microenvironment (TME). Modeling microenvironmental influences in cell culture has been challenging, and technical limitations have hampered the comprehensive study of tumor-specific metabolism in vivo. To systematically interrogate metabolic vulnerabilities in PDA, we employed parallel CRISPR-Cas9 screens using in vivo and in vitro systems. This work revealed striking overlap of in vivo metabolic dependencies with those in vitro. Moreover, we identified that intercellular nutrient sharing can mask dependencies in pooled screens, highlighting a limitation of this approach to study tumor metabolism. Furthermore, metabolic dependencies were similar between 2D and 3D culture, although 3D culture may better model vulnerabilities that influence certain oncogenic signaling pathways. Lastly, our work demonstrates the power of genetic screening approaches to define in vivo metabolic dependencies and pathways that may have therapeutic utility.
PMID: 33152323
ISSN: 1932-7420
CID: 4656182

Neurons Release Serine to Support mRNA Translation in Pancreatic Cancer

Banh, Robert S; Biancur, Douglas E; Yamamoto, Keisuke; Sohn, Albert S W; Walters, Beth; Kuljanin, Miljan; Gikandi, Ajami; Wang, Huamin; Mancias, Joseph D; Schneider, Robert J; Pacold, Michael E; Kimmelman, Alec C
Pancreatic ductal adenocarcinoma (PDAC) tumors have a nutrient-poor, desmoplastic, and highly innervated tumor microenvironment. Although neurons can release stimulatory factors to accelerate PDAC tumorigenesis, the metabolic contribution of peripheral axons has not been explored. We found that peripheral axons release serine (Ser) to support the growth of exogenous Ser (exSer)-dependent PDAC cells during Ser/Gly (glycine) deprivation. Ser deprivation resulted in ribosomal stalling on two of the six Ser codons, TCC and TCT, and allowed the selective translation and secretion of nerve growth factor (NGF) by PDAC cells to promote tumor innervation. Consistent with this, exSer-dependent PDAC tumors grew slower and displayed enhanced innervation in mice on a Ser/Gly-free diet. Blockade of compensatory neuronal innervation using LOXO-101, a Trk-NGF inhibitor, further decreased PDAC tumor growth. Our data indicate that axonal-cancer metabolic crosstalk is a critical adaptation to support PDAC growth in nutrient poor environments.
PMID: 33142117
ISSN: 1097-4172
CID: 4656002

Autophagy promotes immune evasion of pancreatic cancer by degrading MHC-I

Yamamoto, Keisuke; Venida, Anthony; Yano, Julian; Biancur, Douglas E; Kakiuchi, Miwako; Gupta, Suprit; Sohn, Albert S W; Mukhopadhyay, Subhadip; Lin, Elaine Y; Parker, Seth J; Banh, Robert S; Paulo, Joao A; Wen, Kwun Wah; Debnath, Jayanta; Kim, Grace E; Mancias, Joseph D; Fearon, Douglas T; Perera, Rushika M; Kimmelman, Alec C
Immune evasion is a major obstacle for cancer treatment. Common mechanisms of evasion include impaired antigen presentation caused by mutations or loss of heterozygosity of the major histocompatibility complex class I (MHC-I), which has been implicated in resistance to immune checkpoint blockade (ICB) therapy1-3. However, in pancreatic ductal adenocarcinoma (PDAC), which is resistant to most therapies including ICB4, mutations that cause loss of MHC-I are rarely found5 despite the frequent downregulation of MHC-I expression6-8. Here we show that, in PDAC, MHC-I molecules are selectively targeted for lysosomal degradation by an autophagy-dependent mechanism that involves the autophagy cargo receptor NBR1. PDAC cells display reduced expression of MHC-I at the cell surface and instead demonstrate predominant localization within autophagosomes and lysosomes. Notably, inhibition of autophagy restores surface levels of MHC-I and leads to improved antigen presentation, enhanced anti-tumour T cell responses and reduced tumour growth in syngeneic host mice. Accordingly, the anti-tumour effects of autophagy inhibition are reversed by depleting CD8+ T cells or reducing surface expression of MHC-I. Inhibition of autophagy, either genetically or pharmacologically with chloroquine, synergizes with dual ICB therapy (anti-PD1 and anti-CTLA4 antibodies), and leads to an enhanced anti-tumour immune response. Our findings demonstrate a role for enhanced autophagy or lysosome function in immune evasion by selective targeting of MHC-I molecules for degradation, and provide a rationale for the combination of autophagy inhibition and dual ICB therapy as a therapeutic strategy against PDAC.
PMID: 32376951
ISSN: 1476-4687
CID: 4427832

Restoration of TET2 Function Blocks Aberrant Self-Renewal and Leukemia Progression

Cimmino, Luisa; Dolgalev, Igor; Wang, Yubao; Yoshimi, Akihide; Martin, Gaelle H; Wang, Jingjing; Ng, Victor; Xia, Bo; Witkowski, Matthew T; Mitchell-Flack, Marisa; Grillo, Isabella; Bakogianni, Sofia; Ndiaye-Lobry, Delphine; Martin, Miguel Torres; Guillamot, Maria; Banh, Robert S; Xu, Mingjiang; Figueroa, Maria E; Dickins, Ross A; Abdel-Wahab, Omar; Park, Christopher Y; Tsirigos, Aristotelis; Neel, Benjamin G; Aifantis, Iannis
Loss-of-function mutations in TET2 occur frequently in patients with clonal hematopoiesis, myelodysplastic syndrome (MDS), and acute myeloid leukemia (AML) and are associated with a DNA hypermethylation phenotype. To determine the role of TET2 deficiency in leukemia stem cell maintenance, we generated a reversible transgenic RNAi mouse to model restoration of endogenous Tet2 expression. Tet2 restoration reverses aberrant hematopoietic stem and progenitor cell (HSPC) self-renewal in vitro and in vivo. Treatment with vitamin C, a co-factor of Fe2+ and alpha-KG-dependent dioxygenases, mimics TET2 restoration by enhancing 5-hydroxymethylcytosine formation in Tet2-deficient mouse HSPCs and suppresses human leukemic colony formation and leukemia progression of primary human leukemia PDXs. Vitamin C also drives DNA hypomethylation and expression of a TET2-dependent gene signature in human leukemia cell lines. Furthermore, TET-mediated DNA oxidation induced by vitamin C treatment in leukemia cells enhances their sensitivity to PARP inhibition and could provide a safe and effective combination strategy to selectively target TET deficiency in cancer.
PMCID:5755977
PMID: 28823558
ISSN: 1097-4172
CID: 2676732

PTP1B controls non-mitochondrial oxygen consumption by regulating RNF213 to promote tumour survival during hypoxia

Banh, Robert S; Iorio, Caterina; Marcotte, Richard; Xu, Yang; Cojocari, Dan; Rahman, Anas Abdel; Pawling, Judy; Zhang, Wei; Sinha, Ankit; Rose, Christopher M; Isasa, Marta; Zhang, Shuang; Wu, Ronald; Virtanen, Carl; Hitomi, Toshiaki; Habu, Toshiyuki; Sidhu, Sachdev S; Koizumi, Akio; Wilkins, Sarah E; Kislinger, Thomas; Gygi, Steven P; Schofield, Christopher J; Dennis, James W; Wouters, Bradly G; Neel, Benjamin G
Tumours exist in a hypoxic microenvironment and must limit excessive oxygen consumption. Hypoxia-inducible factor (HIF) controls mitochondrial oxygen consumption, but how/if tumours regulate non-mitochondrial oxygen consumption (NMOC) is unknown. Protein-tyrosine phosphatase-1B (PTP1B) is required for Her2/Neu-driven breast cancer (BC) in mice, although the underlying mechanism and human relevance remain unclear. We found that PTP1B-deficient HER2+ xenografts have increased hypoxia, necrosis and impaired growth. In vitro, PTP1B deficiency sensitizes HER2+ BC lines to hypoxia by increasing NMOC by alpha-KG-dependent dioxygenases (alpha-KGDDs). The moyamoya disease gene product RNF213, an E3 ligase, is negatively regulated by PTP1B in HER2+ BC cells. RNF213 knockdown reverses the effects of PTP1B deficiency on alpha-KGDDs, NMOC and hypoxia-induced death of HER2+ BC cells, and partially restores tumorigenicity. We conclude that PTP1B acts via RNF213 to suppress alpha-KGDD activity and NMOC. This PTP1B/RNF213/alpha-KGDD pathway is critical for survival of HER2+ BC, and possibly other malignancies, in the hypoxic tumour microenvironment.
PMCID:4936519
PMID: 27323329
ISSN: 1476-4679
CID: 2159072

PTP1B regulates the Moyamoya disease-associated E3 ligase, RNF213 and cellular dioxygenase activity to allow breast tumor survival in hypoxia [Meeting Abstract]

Banh, Robert S.; Iorio, Caterina; Marcotte, Richard; Xu, Yang; Cojocari, Dan; Rahman, Anas Abdel; Pawling, Judy; Sinha, Ankit; Hitomi, Toshiaki; Habu, Toshiyuki; Koizumi, Akio; Wilkins, Sarah; Kislinger, Thomas; Schofield, Christopher J.; Dennis, James W.; Wouters, Bradly G.; Neel, Benjamin G.
ISI:000371597100394
ISSN: 0008-5472
CID: 4940932

New pROSpects for PTP1B: micro-managing oncogene-induced senescence [Comment]

Banh, Robert S; Xu, Yang; Neel, Benjamin G
Oncogene-induced senescence (OIS) provides an important, but incompletely understood, barrier to tumorigenesis. In this issue, Yang et al. (2014) surprisingly report that inactivation of PTP1B by reactive oxygen species is essential for OIS, via effects on AGO2 and microRNA maturation.
PMID: 25192363
ISSN: 1097-2765
CID: 1363762