Julius Brennecke
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German geneticist and molecular biologist
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Julius Brenneckebiology Degrees
Biology
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#9644
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Genetics
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#1812
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Molecular Biology
#2386
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#2423
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Biology
Why Is Julius Brennecke Influential?
(Suggest an Edit or Addition)According to Wikipedia, Julius Brennecke is a German molecular biologist and geneticist. He is a Senior Group Leader at the Institute of Molecular Biotechnology. of the Austrian Academy of Sciences in Vienna. Education and career Julius Brennecke studied biology at Heidelberg University. During his diploma thesis he focused on the tandem affinity purification of protein complexes in Drosophila. In his PhD-thesis , he specialized on microRNAs and their regulatory targets in Drosophila.
Julius Brennecke's Published Works
Published Works
- Principles of MicroRNA–Target Recognition (2005) (2366)
- Discrete Small RNA-Generating Loci as Master Regulators of Transposon Activity in Drosophila (2007) (2256)
- bantam Encodes a Developmentally Regulated microRNA that Controls Cell Proliferation and Regulates the Proapoptotic Gene hid in Drosophila (2003) (2077)
- Animal MicroRNAs Confer Robustness to Gene Expression and Have a Significant Impact on 3′UTR Evolution (2005) (1147)
- The Piwi-piRNA Pathway Provides an Adaptive Defense in the Transposon Arms Race (2007) (1054)
- Identification of Drosophila MicroRNA Targets (2003) (835)
- Specialized piRNA Pathways Act in Germline and Somatic Tissues of the Drosophila Ovary (2009) (805)
- An Epigenetic Role for Maternally Inherited piRNAs in Transposon Silencing (2008) (737)
- A genome-scale shRNA resource for transgenic RNAi in Drosophila (2011) (728)
- An endogenous small interfering RNA pathway in Drosophila (2008) (693)
- Discovery of functional elements in 12 Drosophila genomes using evolutionary signatures (2007) (639)
- Transcriptional Silencing of Transposons by Piwi and Maelstrom and Its Impact on Chromatin State and Gene Expression (2012) (533)
- Principles of MicroRNATarget Recognition (2005) (315)
- The Rhino-Deadlock-Cutoff Complex Licenses Noncanonical Transcription of Dual-Strand piRNA Clusters in Drosophila (2014) (283)
- Hierarchical rules for Argonaute loading in Drosophila. (2009) (269)
- An in vivo RNAi assay identifies major genetic and cellular requirements for primary piRNA biogenesis in Drosophila (2010) (264)
- piRNA-guided slicing specifies transcripts for Zucchini-dependent, phased piRNA biogenesis (2015) (262)
- Temporal Reciprocity of miRNAs and Their Targets during the Maternal-to-Zygotic Transition in Drosophila (2008) (252)
- The piRNA pathway: a fly's perspective on the guardian of the genome. (2010) (240)
- A single Hox locus in Drosophila produces functional microRNAs from opposite DNA strands. (2008) (236)
- The Genetic Makeup of the Drosophila piRNA Pathway (2013) (200)
- Systematic discovery and characterization of fly microRNAs using 12 Drosophila genomes. (2007) (197)
- A systematic analysis of Drosophila TUDOR domain‐containing proteins identifies Vreteno and the Tdrd12 family as essential primary piRNA pathway factors (2011) (180)
- Genome-Wide Analysis of mRNAs Regulated by Drosha and Argonaute Proteins in Drosophila melanogaster (2006) (159)
- A heterochromatin-dependent transcription machinery drives piRNA expression (2017) (158)
- The Cochaperone Shutdown Defines a Group of Biogenesis Factors Essential for All piRNA Populations in Drosophila (2012) (140)
- Silencio/CG9754 connects the Piwi–piRNA complex to the cellular heterochromatin machinery (2015) (135)
- Drosophila Gtsf1 is an essential component of the Piwi-mediated transcriptional silencing complex. (2013) (128)
- piRNA-guided slicing of transposon transcripts enforces their transcriptional silencing via specifying the nuclear piRNA repertoire (2015) (109)
- Transportin2 functions as importin and mediates nuclear import of HuR. (2004) (109)
- Denoising feedback loops by thresholding--a new role for microRNAs. (2006) (106)
- Processing of Drosophila endo-siRNAs depends on a specific Loquacious isoform. (2009) (103)
- Genetic and mechanistic diversity of piRNA 3' end formation (2016) (96)
- Towards a complete description of the microRNA complement of animal genomes (2003) (93)
- The nascent RNA binding complex SFiNX licenses piRNA-guided heterochromatin formation (2019) (59)
- The exon junction complex is required for definition and excision of neighboring introns in Drosophila (2014) (57)
- A Rapid, Highly Sensitive and Open-Access SARS-CoV-2 Detection Assay for Laboratory and Home Testing (2020) (53)
- A Heterochromatin-Specific RNA Export Pathway Facilitates piRNA Production (2019) (52)
- Not miR-ly muscular: microRNAs and muscle development. (2005) (42)
- Preparation of small RNA libraries for high-throughput sequencing. (2012) (33)
- Scalable, rapid and highly sensitive isothermal detection of SARS-CoV-2 for laboratory and home testing (2020) (31)
- Analysis of Large-Scale Sequencing of Small RNAs (2007) (27)
- Structure of the human core transcription-export complex reveals a hub for multivalent interactions (2020) (22)
- Pitfalls of mapping high-throughput sequencing data to repetitive sequences: Piwi's genomic targets still not identified. (2015) (21)
- Molecular principles of Piwi-mediated cotranscriptional silencing through the dimeric SFiNX complex (2021) (17)
- A universal method for the rapid isolation of all known classes of functional silencing small RNAs (2020) (10)
- Perinatal Androgens and Adult Behavior Vary with Nestling Social System in Siblicidal Boobies (2008) (10)
- Panoramix SUMOylation on chromatin connects the piRNA pathway to the cellular heterochromatin machinery (2022) (9)
- The Drosophila ZAD zinc finger protein Kipferl guides Rhino to piRNA clusters (2022) (8)
- Mixed Messages in Early Development (2006) (8)
- Developmental biology. Mixed messages in early development. (2006) (7)
- Structure-function analysis of microRNA 3′-end trimming by Nibbler (2020) (6)
- Transrepression of AP-1 by nuclear receptors in Drosophila (2002) (5)
- Head-to-head comparison of direct-input RT-PCR and RT-LAMP against RTqPCR on extracted RNA for rapid SARS-CoV-2 diagnostics (2021) (5)
- Loquacious isoform endo-siRNAs depends on a specific Drosophila Processing of Material Supplemental (2009) (3)
- A genetic toolkit for studying transposon control in the Drosophila melanogaster ovary (2021) (2)
- ZFP462 safeguards neural lineage specification by targeting G9A/GLP-mediated heterochromatin to silence enhancers (2023) (1)
- ZFP462 targets heterochromatin to transposon-derived enhancers restricting transcription factor binding and expression of lineage-specifying genes (2021) (1)
- in Transposon Silencing An Epigenetic Role for Maternally Inherited piRNAs (2009) (1)
- from opposite DNA strands produces functional microRNAs Drosophila A single Hox locus in (2008) (0)
- A SUMO-dependent regulatory switch connects the piRNA pathway to the heterochromatin machinery in Drosophila (2021) (0)
- Author response: Structure of the human core transcription-export complex reveals a hub for multivalent interactions (2020) (0)
- The evolution of an RNA-based memory of self in the face of genomic conflict (2022) (0)
- Multiplexed detection of SARS-CoV-2 and other respiratory infections in high throughput by SARSeq (2021) (0)
- A Conversation with Julius Brennecke. (2015) (0)
- , from opposite DNA strands produces functional microRNAsDrosophilaA single Hox locus in data (2007) (0)
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What Schools Are Affiliated With Julius Brennecke?
Julius Brennecke is affiliated with the following schools: