Prof. Dr.

Roland Rad

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Principal Investigator

Prof. Dr.

Roland Rad

Chair of Molecular Oncology and Functional Genomics, Director, Institute of Molecular Oncology and Functional Genomics, TUM School of Medicine and Health

TUM Universitätsklinikum

Research background

Cancer evolves through the interaction of molecular, cellular, and organismal processes that continuously reshape tumor populations over time. Understanding how the coordinated action of processes across biological scales drives disease pathogenesis remains a major challenge.

Roland Rad’s research investigates oncogenic mechanisms by integrating experimental and computational approaches. The laboratory develops disease models and genomic technologies, including high-throughput screening systems, enabling the systematic discovery of cancer genes, genetic interactions, and regulatory mechanisms, including those mediated by non-coding RNAs. The research seeks to elucidate the processes underlying malignant transformation, metastasis, and drug resistance, and to translate these insights into new strategies for cancer prevention and treatment.

Research fields
Publications

A disease model resource reveals core principles of tissue-specific cancer evolution.

Mueller, S.; de Andrade Krätzig, N.; Tschurtschenthaler, M.; Silva, MG.; Thordsen, C.; Trozzo, R.; Simon, P.; Saab, F.; Kaltenbacher, T.; Zukowska, M.; Lucarelli, D.; Öllinger, R.; Griger, J.; Groß, N.; Groll, T.; Löprich, J.; Zaurito, AE.; Schömig, LR.; Bugter, JM.; Bärthel, S.; Falcomatà, C.; Strong, A.; Brandt, C.; Najajreh, M.; Papargyriou, A.; Maresch, R.; Collins, KAN.; Sailer, D.; Schneeweis, C.; Burger, S.; Fröhlich, LM.; Klement, C.; Belka, A.; Montero, JJ.; Jungwirth, U.; Reichert, M.; Moser, M.; Neumann, J.; Vassiliou, G.; Cadiñanos, J.; Varela, I.; Marr, C.; Alonso, DF.; Lollini, PL.; Zhao, J.; Chesler, L.; Isacke, CM.; Riedel, A.; Braun, CJ.; Sos, ML.; Beleggia, F.; Reinhardt, HC.; Musteanu, M.; Barbacid, M.; Quante, M.; Schmidt-Supprian, M.; Schneider, G.; Clare, S.; Lawley, TD.; Dougan, G.; Steiger, K.; Conte, N.; Bradley, A.; Rad, L.; Saur, D.; Rad, R.

Nature. · 2026

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Oncogenes such as KRAS display marked tissue specificity in their oncogenic potential, genetic interactions and phenotypic effects, but the underlying determinants remain largely unresolved. Here, to address these questions, we developed the Mouse Cancer Cell line Atlas, a broad-utility resource of 590 comprehensively characterized models across a wide range of entities ( www.mcca.tum.de ). Comparative and functional studies using this platform, human cohorts and mice identified core principles underlying tissue-specific evolution of KRAS-initiated cancers. First, we show that mutant KRAS dosage gain through allelic imbalance exerts cell-type-specific effects, defining its timing across entities, as exemplified by dosage-sensitive developmental reprogramming during pancreatic cancer initiation. Second, we highlight how tissue- and stage-specific evolutionary requirements, such as block of differentiation in the intestine, select for KRAS-collaborating alterations. Third, we identified context-dependent epistatic KRAS-tumour suppressor interactions and show that reciprocal dosage sensitivities dictate the entity-specific patterns of cancer gene alterations, explaining their frequency, zygosity and acquisition chronology. These findings highlight how intrinsic and acquired determinants instruct cancer evolution in different tissues, with predictable molecular patterns, temporal dynamics and phenotypic outcomes. Our study provides major advances towards a mechanistic understanding of cancer genomes.

Kupffer Cell-Derived Tnf Triggers Cholangiocellular Tumorigenesis through JNK due to Chronic Mitochondrial Dysfunction and ROS.

Yuan, D.; Huang, S.; Berger, E.; Liu, L.; Gross, N.; Heinzmann, F.; Ringelhan, M.; Connor, TO.; Stadler, M.; Meister, M.; Weber, J.; Öllinger, R.; Simonavicius, N.; Reisinger, F.; Hartmann, D.; Meyer, R.; Reich, M.; Seehawer, M.; Leone, V.; Höchst, B.; Wohlleber, D.; Jörs, S.; Prinz, M.; Spalding, D.; Protzer, U.; Luedde, T.; Terracciano, L.; Matter, M.; Longerich, T.; Knolle, P.; Ried, T.; Keitel, V.; Geisler, F.; Unger, K.; Cinnamon, E.; Pikarsky, E.; Hüser, N.; Davis, RJ.; Tschaharganeh, DF.; Rad, R.; Weber, A.; Zender, L.; Haller, D.; Heikenwalder, M.

Cancer Cell. · 2026

Genome-scale pan-cancer interrogation of lncRNA dependencies using CasRx.

Montero, JJ.; Trozzo, R.; Sugden, M.; Öllinger, R.; Belka, A.; Zhigalova, E.; Waetzig, P.; Engleitner, T.; Schmidt-Supprian, M.; Saur, D.; Rad, R.

Nat Methods. · 2024

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Although long noncoding RNAs (lncRNAs) dominate the transcriptome, their functions are largely unexplored. The extensive overlap of lncRNAs with coding and regulatory sequences restricts their systematic interrogation by DNA-directed perturbation. Here we developed genome-scale lncRNA transcriptome screening using Cas13d/CasRx. We show that RNA targeting overcomes limitations inherent to other screening methods, thereby considerably expanding the explorable space of the lncRNAome. By evolving the screening system toward pan-cancer applicability, it supports molecular and phenotypic data integration to contextualize screening hits or infer lncRNA function. We thereby addressed challenges posed by the enormous transcriptome size and tissue specificity through a size-reduced multiplexed gRNA library termed Albarossa, targeting 24,171 lncRNA genes. Its rational design incorporates target prioritization based on expression, evolutionary conservation and tissue specificity, thereby reconciling high discovery power and pan-cancer representation with scalable experimental throughput. Applied across entities, the screening platform identified numerous context-specific and common essential lncRNAs. Our work sets the stage for systematic exploration of lncRNA biology in health and disease.

Evolutionary routes and KRAS dosage define pancreatic cancer phenotypes.

Mueller, S.; Engleitner, T.; Maresch, R.; Zukowska, M.; Lange, S.; Kaltenbacher, T.; Konukiewitz, B.; Öllinger, R.; Zwiebel, M.; Strong, A.; Yen, HY.; Banerjee, R.; Louzada, S.; Fu, B.; Seidler, B.; Götzfried, J.; Schuck, K.; Hassan, Z.; Arbeiter, A.; Schönhuber, N.; Klein, S.; Veltkamp, C.; Friedrich, M.; Rad, L.; Barenboim, M.; Ziegenhain, C.; Hess, J.; Dovey, OM.; Eser, S.; Parekh, S.; Constantino-Casas, F.; de la Rosa, J.; Sierra, MI.; Fraga, M.; Mayerle, J.; Klöppel, G.; Cadiñanos, J.; Liu, P.; Vassiliou, G.; Weichert, W.; Steiger, K.; Enard, W.; Schmid, RM.; Yang, F.; Unger, K.; Schneider, G.; Varela, I.; Bradley, A.; Saur, D.; Rad, R.

Nature. · 2018

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The poor correlation of mutational landscapes with phenotypes limits our understanding of the pathogenesis and metastasis of pancreatic ductal adenocarcinoma (PDAC). Here we show that oncogenic dosage-variation has a critical role in PDAC biology and phenotypic diversification. We find an increase in gene dosage of mutant KRAS in human PDAC precursors, which drives both early tumorigenesis and metastasis and thus rationalizes early PDAC dissemination. To overcome the limitations posed to gene dosage studies by the stromal richness of PDAC, we have developed large cell culture resources of metastatic mouse PDAC. Integration of cell culture genomes, transcriptomes and tumour phenotypes with functional studies and human data reveals additional widespread effects of oncogenic dosage variation on cell morphology and plasticity, histopathology and clinical outcome, with the highest Kras levels underlying aggressive undifferentiated phenotypes. We also identify alternative oncogenic gains (Myc, Yap1 or Nfkb2), which collaborate with heterozygous Kras in driving tumorigenesis, but have lower metastatic potential. Mechanistically, different oncogenic gains and dosages evolve along distinct evolutionary routes, licensed by defined allelic states and/or combinations of hallmark tumour suppressor alterations (Cdkn2a, Trp53, Tgfβ-pathway). Thus, evolutionary constraints and contingencies direct oncogenic dosage gain and variation along defined routes to drive the early progression of PDAC and shape its downstream biology. Our study uncovers universal principles of Ras-driven oncogenesis that have potential relevance beyond pancreatic cancer.

PiggyBac transposon mutagenesis: a tool for cancer gene discovery in mice.

Rad, R.; Rad, L.; Wang, W.; Cadinanos, J.; Vassiliou, G.; Rice, S.; Campos, LS.; Yusa, K.; Banerjee, R.; Li, MA.; de la Rosa, J.; Strong, A.; Lu, D.; Ellis, P.; Conte, N.; Yang, FT.; Liu, P.; Bradley, A.

Science. · 2010

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Transposons are mobile DNA segments that can disrupt gene function by inserting in or near genes. Here, we show that insertional mutagenesis by the PiggyBac transposon can be used for cancer gene discovery in mice. PiggyBac transposition in genetically engineered transposon-transposase mice induced cancers whose type (hematopoietic versus solid) and latency were dependent on the regulatory elements introduced into transposons. Analysis of 63 hematopoietic tumors revealed that PiggyBac is capable of genome-wide mutagenesis. The PiggyBac screen uncovered many cancer genes not identified in previous retroviral or Sleeping Beauty transposon screens, including Spic, which encodes a PU.1-related transcription factor, and Hdac7, a histone deacetylase gene. PiggyBac and Sleeping Beauty have different integration preferences. To maximize the utility of the tool, we engineered 21 mouse lines to be compatible with both transposon systems in constitutive, tissue- or temporal-specific mutagenesis. Mice with different transposon types, copy numbers, and chromosomal locations support wide applicability.