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11


Targeting the Atf7ip-Setdb1 Complex Augments Antitumor Immunity by Boosting Tumor Immunogenicity

Hu, Hai; Khodadadi-Jamayran, Alireza; Dolgalev, Igor; Cho, Hyunwoo; Badri, Sana; Chiriboga, Luis A; Zeck, Briana; Lopez De Rodas Gregorio, Miguel; Dowling, Catríona M; Labbe, Kristen; Deng, Jiehui; Chen, Ting; Zhang, Hua; Zappile, Paul; Chen, Ze; Ueberheide, Beatrix; Karatza, Angeliki; Han, Han; Ranieri, Michela; Tang, Sittinon; Jour, George; Osman, Iman; Sucker, Antje; Schadendorf, Dirk; Tsirigos, Aristotelis; Schalper, Kurt A; Velcheti, Vamsidhar; Huang, Hsin-Yi; Jin, Yujuan; Ji, Hongbin; Poirier, John T; Li, Fei; Wong, Kwok-Kin
Substantial progress has been made in understanding how tumors escape immune surveillance. However, few measures to counteract tumor immune evasion have been developed. Suppression of tumor antigen expression is a common adaptive mechanism that cancers use to evade detection and destruction by the immune system. Epigenetic modifications play a critical role in various aspects of immune invasion, including the regulation of tumor antigen expression. To identify epigenetic regulators of tumor antigen expression, we established a transplantable syngeneic tumor model of immune escape with silenced antigen expression and used this system as a platform for a CRISPR-Cas9 suppressor screen for genes encoding epigenetic modifiers. We found that disruption of the genes encoding either of the chromatin modifiers activating transcription factor 7-interacting protein (Atf7ip) or its interacting partner SET domain bifurcated histone lysine methyltransferase 1 (Setdb1) in tumor cells restored tumor antigen expression. This resulted in augmented tumor immunogenicity concomitant with elevated endogenous retroviral (ERV) antigens and mRNA intron retention. ERV disinhibition was associated with a robust type I interferon response and increased T-cell infiltration, leading to rejection of cells lacking intact Atf7ip or Setdb1. ATF7IP or SETDB1 expression inversely correlated with antigen processing and presentation pathways, interferon signaling, and T-cell infiltration and cytotoxicity in human cancers. Our results provide a rationale for targeting Atf7ip or Setdb1 in cancer immunotherapy.
PMID: 34462284
ISSN: 2326-6074
CID: 5061142

Scaffold association factor B (SAFB) is required for expression of prenyltransferases and RAS membrane association

Zhou, Mo; Kuruvilla, Leena; Shi, Xiarong; Viviano, Stephen; Ahearn, Ian M; Amendola, Caroline R; Su, Wenjuan; Badri, Sana; Mahaffey, James; Fehrenbacher, Nicole; Skok, Jane; Schlessinger, Joseph; Turk, Benjamin E; Calderwood, David A; Philips, Mark R
Inhibiting membrane association of RAS has long been considered a rational approach to anticancer therapy, which led to the development of farnesyltransferase inhibitors (FTIs). However, FTIs proved ineffective against KRAS-driven tumors. To reveal alternative therapeutic strategies, we carried out a genome-wide CRISPR-Cas9 screen designed to identify genes required for KRAS4B membrane association. We identified five enzymes in the prenylation pathway and SAFB, a nuclear protein with both DNA and RNA binding domains. Silencing SAFB led to marked mislocalization of all RAS isoforms as well as RAP1A but not RAB7A, a pattern that phenocopied silencing FNTA, the prenyltransferase α subunit shared by farnesyltransferase and geranylgeranyltransferase type I. We found that SAFB promoted RAS membrane association by controlling FNTA expression. SAFB knockdown decreased GTP loading of RAS, abrogated alternative prenylation, and sensitized RAS-mutant cells to growth inhibition by FTI. Our work establishes the prenylation pathway as paramount in KRAS membrane association, reveals a regulator of prenyltransferase expression, and suggests that reduction in FNTA expression may enhance the efficacy of FTIs.
PMID: 33257571
ISSN: 1091-6490
CID: 4694022

Author Correction: Defining the relative and combined contribution of CTCF and CTCFL to genomic regulation

Nishana, Mayilaadumveettil; Ha, Caryn; Rodriguez-Hernaez, Javier; Ranjbaran, Ali; Chio, Erica; Nora, Elphege P; Badri, Sana B; Kloetgen, Andreas; Bruneau, Benoit G; Tsirigos, Aristotelis; Skok, Jane A
An amendment to this paper has been published and can be accessed via the original article.
PMID: 32487268
ISSN: 1474-760x
CID: 4468962

Defining the relative and combined contribution of CTCF and CTCFL to genomic regulation

Nishana, Mayilaadumveettil; Ha, Caryn; Rodriguez-Hernaez, Javier; Ranjbaran, Ali; Chio, Erica; Nora, Elphege P; Badri, Sana B; Kloetgen, Andreas; Bruneau, Benoit G; Tsirigos, Aristotelis; Skok, Jane A
BACKGROUND:Ubiquitously expressed CTCF is involved in numerous cellular functions, such as organizing chromatin into TAD structures. In contrast, its paralog, CTCFL, is normally only present in the testis. However, it is also aberrantly expressed in many cancers. While it is known that shared and unique zinc finger sequences in CTCF and CTCFL enable CTCFL to bind competitively to a subset of CTCF binding sites as well as its own unique locations, the impact of CTCFL on chromosome organization and gene expression has not been comprehensively analyzed in the context of CTCF function. Using an inducible complementation system, we analyze the impact of expressing CTCFL and CTCF-CTCFL chimeric proteins in the presence or absence of endogenous CTCF to clarify the relative and combined contribution of CTCF and CTCFL to chromosome organization and transcription. RESULTS:We demonstrate that the N terminus of CTCF interacts with cohesin which explains the requirement for convergent CTCF binding sites in loop formation. By analyzing CTCF and CTCFL binding in tandem, we identify phenotypically distinct sites with respect to motifs, targeting to promoter/intronic intergenic regions and chromatin folding. Finally, we reveal that the N, C, and zinc finger terminal domains play unique roles in targeting each paralog to distinct binding sites to regulate transcription, chromatin looping, and insulation. CONCLUSION/CONCLUSIONS:This study clarifies the unique and combined contribution of CTCF and CTCFL to chromosome organization and transcription, with direct implications for understanding how their co-expression deregulates transcription in cancer.
PMID: 32393311
ISSN: 1474-760x
CID: 4431012

EpiMethylTag: simultaneous detection of ATAC-seq or ChIP-seq signals with DNA methylation

Lhoumaud, Priscillia; Sethia, Gunjan; Izzo, Franco; Sakellaropoulos, Theodore; Snetkova, Valentina; Vidal, Simon; Badri, Sana; Cornwell, Macintosh; Di Giammartino, Dafne Campigli; Kim, Kyu-Tae; Apostolou, Effie; Stadtfeld, Matthias; Landau, Dan Avi; Skok, Jane
Activation of regulatory elements is thought to be inversely correlated with DNA methylation levels. However, it is difficult to determine whether DNA methylation is compatible with chromatin accessibility or transcription factor (TF) binding if assays are performed separately. We developed a fast, low-input, low sequencing depth method, EpiMethylTag, that combines ATAC-seq or ChIP-seq (M-ATAC or M-ChIP) with bisulfite conversion, to simultaneously examine accessibility/TF binding and methylation on the same DNA. Here we demonstrate that EpiMethylTag can be used to study the functional interplay between chromatin accessibility and TF binding (CTCF and KLF4) at methylated sites.
PMID: 31752933
ISSN: 1474-760x
CID: 4209262

NSD2 overexpression drives clustered chromatin and transcriptional changes in a subset of insulated domains

Lhoumaud, Priscillia; Badri, Sana; Rodriguez-Hernaez, Javier; Sakellaropoulos, Theodore; Sethia, Gunjan; Kloetgen, Andreas; Cornwell, MacIntosh; Bhattacharyya, Sourya; Ay, Ferhat; Bonneau, Richard; Tsirigos, Aristotelis; Skok, Jane A
CTCF and cohesin play a key role in organizing chromatin into topologically associating domain (TAD) structures. Disruption of a single CTCF binding site is sufficient to change chromosomal interactions leading to alterations in chromatin modifications and gene regulation. However, the extent to which alterations in chromatin modifications can disrupt 3D chromosome organization leading to transcriptional changes is unknown. In multiple myeloma, a 4;14 translocation induces overexpression of the histone methyltransferase, NSD2, resulting in expansion of H3K36me2 and shrinkage of antagonistic H3K27me3 domains. Using isogenic cell lines producing high and low levels of NSD2, here we find oncogene activation is linked to alterations in H3K27ac and CTCF within H3K36me2 enriched chromatin. A logistic regression model reveals that differentially expressed genes are significantly enriched within the same insulated domain as altered H3K27ac and CTCF peaks. These results identify a bidirectional relationship between 2D chromatin and 3D genome organization in gene regulation.
PMCID:6813313
PMID: 31649247
ISSN: 2041-1723
CID: 4161802

LINE-1 protein localization and functional dynamics during the cell cycle

Mita, Paolo; Wudzinska, Aleksandra; Sun, Xiaoji; Andrade, Joshua; Nayak, Shruti; Kahler, David J; Badri, Sana; LaCava, John; Ueberheide, Beatrix; Yun, Chi Y; Fenyo, David; Boeke, Jef D
LINE-1/L1 retrotransposon sequences comprise 17% of the human genome. Among the many classes of mobile genetic elements, L1 is the only autonomous retrotransposon that still drives human genomic plasticity today. Through its co-evolution with the human genome, L1 has intertwined itself with host cell biology. However, a clear understanding of L1's lifecycle and the processes involved in restricting its insertion and intragenomic spread remains elusive. Here we identify modes of L1 proteins' entrance into the nucleus, a necessary step for L1 proliferation. Using functional, biochemical, and imaging approaches, we also show a clear cell cycle bias for L1 retrotransposition that peaks during the S phase. Our observations provide a basis for novel interpretations about the nature of nuclear and cytoplasmic L1 ribonucleoproteins (RNPs) and the potential role of DNA replication in L1 retrotransposition.
PMCID:5821460
PMID: 29309036
ISSN: 2050-084x
CID: 2906582

Dissection of affinity captured LINE-1 macromolecular complexes

Taylor, Martin S; Altukhov, Ilya; Molloy, Kelly R; Mita, Paolo; Jiang, Hua; Adney, Emily M; Wudzinska, Aleksandra; Badri, Sana; Ischenko, Dmitry; Eng, George; Burns, Kathleen H; Fenyo, David; Chait, Brian T; Alexeev, Dmitry; Rout, Michael P; Boeke, Jef D; LaCava, John
Long Interspersed Nuclear Element-1 (LINE-1, L1) is a mobile genetic element active in human genomes. L1-encoded ORF1 and ORF2 proteins bind L1 RNAs, forming ribonucleoproteins (RNPs). These RNPs interact with diverse host proteins, some repressive and others required for the L1 lifecycle. Using differential affinity purifications, quantitative mass spectrometry, and next generation RNA sequencing, we have characterized the proteins and nucleic acids associated with distinctive, enzymatically active L1 macromolecular complexes. Among them, we describe a cytoplasmic intermediate that we hypothesize to be the canonical ORF1p/ORF2p/L1-RNA-containing RNP, and we describe a nuclear population containing ORF2p, but lacking ORF1p, which likely contains host factors participating in target-primed reverse transcription.
PMCID:5821459
PMID: 29309035
ISSN: 2050-084x
CID: 2906592

Identification of multi-loci hubs from 4C-seq demonstrates the functional importance of simultaneous interactions

Jiang, Tingting; Raviram, Ramya; Snetkova, Valentina; Rocha, Pedro P; Proudhon, Charlotte; Badri, Sana; Bonneau, Richard; Skok, Jane A; Kluger, Yuval
Use of low resolution single cell DNA FISH and population based high resolution chromosome conformation capture techniques have highlighted the importance of pairwise chromatin interactions in gene regulation. However, it is unlikely that associations involving regulatory elements act in isolation of other interacting partners that also influence their impact. Indeed, the influence of multi-loci interactions remains something of an enigma as beyond low-resolution DNA FISH we do not have the appropriate tools to analyze these. Here we present a method that uses standard 4C-seq data to identify multi-loci interactions from the same cell. We demonstrate the feasibility of our method using 4C-seq data sets that identify known pairwise and novel tri-loci interactions involving the Tcrb and Igk antigen receptor enhancers. We further show that the three Igk enhancers, MiEkappa, 3'Ekappa and Edkappa, interact simultaneously in this super-enhancer cluster, which add to our previous findings showing that loss of one element decreases interactions between all three elements as well as reducing their transcriptional output. These findings underscore the functional importance of simultaneous interactions and provide new insight into the relationship between enhancer elements. Our method opens the door for studying multi-loci interactions and their impact on gene regulation in other biological settings.
PMCID:5062970
PMID: 27439714
ISSN: 1362-4962
CID: 2185482

Active and Inactive Enhancers Cooperate to Exert Localized and Long-Range Control of Gene Regulation

Proudhon, Charlotte; Snetkova, Valentina; Raviram, Ramya; Lobry, Camille; Badri, Sana; Jiang, Tingting; Hao, Bingtao; Trimarchi, Thomas; Kluger, Yuval; Aifantis, Iannis; Bonneau, Richard; Skok, Jane A
V(D)J recombination relies on the presence of proximal enhancers that activate the antigen receptor (AgR) loci in a lineage- and stage-specific manner. Unexpectedly, we find that both active and inactive AgR enhancers cooperate to disseminate their effects in a localized and long-range manner. Here, we demonstrate the importance of short-range contacts between active enhancers that constitute an Igk super-enhancer in B cells. Deletion of one element reduces the interaction frequency between other enhancers in the hub, which compromises the transcriptional output of each component. Furthermore, we establish that, in T cells, long-range contact and cooperation between the inactive Igk enhancer MiEkappa and the active Tcrb enhancer Ebeta alters enrichment of CBFbeta binding in a manner that impacts Tcrb recombination. These findings underline the complexities of enhancer regulation and point to a role for localized and long-range enhancer-sharing between active and inactive elements in lineage- and stage-specific control.
PMCID:4899175
PMID: 27239026
ISSN: 2211-1247
CID: 2125032