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Lee Y, Yoo S, Cho S, Kim I, Kim IS. Advances in transcription factor delivery: Target selection, engineering strategies, and delivery platforms. J Control Release 2025; 384:113885. [PMID: 40425091 DOI: 10.1016/j.jconrel.2025.113885] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 03/11/2025] [Revised: 05/03/2025] [Accepted: 05/22/2025] [Indexed: 05/29/2025]
Abstract
Recent advances in delivery systems for transcription factors (TFs) have opened new therapeutic opportunities in regenerative medicine, cancer therapy, and genetic disorders. However, effective TF delivery still faces substantial obstacles, including limited cellular uptake, inefficient nuclear translocation, low cargo stability, and insufficient target specificity. Furthermore, artificial TFs have enabled targeted modulation of gene expression, further expanding their therapeutic potential. This review comprehensively discusses current progress in TF delivery methodologies, including direct TF protein delivery using cell-penetrating peptides, and extracellular vesicles, as well as TF gene delivery approaches utilizing both lipid-based nanoparticles and viral strategies. Notably, engineered nanoparticles have emerged as promising platforms due to their precise control over TF delivery, improved specificity, and minimized off-target effects. Despite these significant advancements, major hurdles in delivery efficiency, cargo stability, and overall safety persist. Overcoming these obstacles will be essential to accelerate the clinical translation of TF-based therapeutics for a broad spectrum of diseases.
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Affiliation(s)
- Yeji Lee
- KU-KIST Graduate School of Converging Science and Technology, Korea University, Seoul 02841, South Korea; Chemical and Biological Integrative Research Center, Biomedical Research Institute, Korea Institute Science and Technology, Seoul 02792, South Korea
| | - Seongkyeong Yoo
- Department of Pharmacology and Program in Biomedical Science and Engineering, Inha University College of Medicine, Incheon 22212, South Korea; Research Center for Controlling Intercellular Communication, Inha University College of Medicine, Incheon 22212, South Korea
| | - Seongeon Cho
- KU-KIST Graduate School of Converging Science and Technology, Korea University, Seoul 02841, South Korea; Chemical and Biological Integrative Research Center, Biomedical Research Institute, Korea Institute Science and Technology, Seoul 02792, South Korea
| | - Iljin Kim
- Department of Pharmacology and Program in Biomedical Science and Engineering, Inha University College of Medicine, Incheon 22212, South Korea; Research Center for Controlling Intercellular Communication, Inha University College of Medicine, Incheon 22212, South Korea.
| | - In-San Kim
- KU-KIST Graduate School of Converging Science and Technology, Korea University, Seoul 02841, South Korea; Chemical and Biological Integrative Research Center, Biomedical Research Institute, Korea Institute Science and Technology, Seoul 02792, South Korea.
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Nedomova M, Haberecht-Müller S, Möller S, Venz S, Prochazkova M, Prochazka J, Sedlak F, Chawengsaksophak K, Hammer E, Kasparek P, Adamek M, Sedlacek R, Konvalinka J, Krüger E, Grantz Saskova K. DDI2 protease controls embryonic development and inflammation via TCF11/NRF1. iScience 2024; 27:110893. [PMID: 39328932 PMCID: PMC11424978 DOI: 10.1016/j.isci.2024.110893] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 03/14/2024] [Revised: 03/25/2024] [Accepted: 09/03/2024] [Indexed: 09/28/2024] Open
Abstract
DDI2 is an aspartic protease that cleaves polyubiquitinated substrates. Upon proteotoxic stress, DDI2 activates the transcription factor TCF11/NRF1 (NFE2L1), crucial for maintaining proteostasis in mammalian cells, enabling the expression of rescue factors, including proteasome subunits. Here, we describe the consequences of DDI2 ablation in vivo and in cells. DDI2 knock-out (KO) in mice caused embryonic lethality at E12.5 with severe developmental failure. Molecular characterization of embryos showed insufficient proteasome expression with proteotoxic stress, accumulation of high molecular weight ubiquitin conjugates and induction of the unfolded protein response (UPR) and cell death pathways. In DDI2 surrogate KO cells, proteotoxic stress activated the integrated stress response (ISR) and induced a type I interferon (IFN) signature and IFN-induced proliferative signaling, possibly ensuring survival. These results indicate an important role for DDI2 in the cell-tissue proteostasis network and in maintaining a balanced immune response.
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Affiliation(s)
- Monika Nedomova
- Institute of Organic Chemistry and Biochemistry of the Academy of Sciences of the Czech Republic, Flemingovo n. 2, 166 10 Prague, Czech Republic
- First Faculty of Medicine, Charles University in Prague, Katerinska 32, 121 08 Prague, Czech Republic
- Department of Genetics and Microbiology, Faculty of Science, Charles University, BIOCEV, 25242 Vestec, Czech Republic
| | - Stefanie Haberecht-Müller
- Institute of Medical Biochemistry and Molecular Biology, Universitätsmedizin Greifswald, Ferdinand-Sauerbruch-Straße, Klinikum DZ 7, 17475 Greifswald, Germany
| | - Sophie Möller
- Institute of Medical Biochemistry and Molecular Biology, Universitätsmedizin Greifswald, Ferdinand-Sauerbruch-Straße, Klinikum DZ 7, 17475 Greifswald, Germany
| | - Simone Venz
- Institute of Medical Biochemistry and Molecular Biology, Universitätsmedizin Greifswald, Ferdinand-Sauerbruch-Straße, Klinikum DZ 7, 17475 Greifswald, Germany
| | - Michaela Prochazkova
- Department of Functional Genomics, Universitätsmedizin Greifswald, Felix-Hausdorff-Str. 8, 17475 Greifswald, Germany
| | - Jan Prochazka
- Department of Functional Genomics, Universitätsmedizin Greifswald, Felix-Hausdorff-Str. 8, 17475 Greifswald, Germany
| | - Frantisek Sedlak
- Institute of Organic Chemistry and Biochemistry of the Academy of Sciences of the Czech Republic, Flemingovo n. 2, 166 10 Prague, Czech Republic
- First Faculty of Medicine, Charles University in Prague, Katerinska 32, 121 08 Prague, Czech Republic
- Department of Genetics and Microbiology, Faculty of Science, Charles University, BIOCEV, 25242 Vestec, Czech Republic
| | - Kallayanee Chawengsaksophak
- Institute of Molecular Genetics of the Czech Academy of Sciences, Czech Centre for Phenogenomics and Laboratory of Transgenic Models of Diseases, BIOCEV, 25242 Vestec, Czech Republic
| | - Elke Hammer
- Department of Functional Genomics, Universitätsmedizin Greifswald, Felix-Hausdorff-Str. 8, 17475 Greifswald, Germany
| | - Petr Kasparek
- Institute of Molecular Genetics of the Czech Academy of Sciences, Czech Centre for Phenogenomics and Laboratory of Transgenic Models of Diseases, BIOCEV, 25242 Vestec, Czech Republic
| | - Michael Adamek
- Institute of Organic Chemistry and Biochemistry of the Academy of Sciences of the Czech Republic, Flemingovo n. 2, 166 10 Prague, Czech Republic
- Department of Genetics and Microbiology, Faculty of Science, Charles University, BIOCEV, 25242 Vestec, Czech Republic
| | - Radislav Sedlacek
- Institute of Molecular Genetics of the Czech Academy of Sciences, Czech Centre for Phenogenomics and Laboratory of Transgenic Models of Diseases, BIOCEV, 25242 Vestec, Czech Republic
| | - Jan Konvalinka
- Institute of Organic Chemistry and Biochemistry of the Academy of Sciences of the Czech Republic, Flemingovo n. 2, 166 10 Prague, Czech Republic
| | - Elke Krüger
- Institute of Medical Biochemistry and Molecular Biology, Universitätsmedizin Greifswald, Ferdinand-Sauerbruch-Straße, Klinikum DZ 7, 17475 Greifswald, Germany
| | - Klara Grantz Saskova
- Institute of Organic Chemistry and Biochemistry of the Academy of Sciences of the Czech Republic, Flemingovo n. 2, 166 10 Prague, Czech Republic
- Department of Genetics and Microbiology, Faculty of Science, Charles University, BIOCEV, 25242 Vestec, Czech Republic
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Murray MB, Dixon SJ. Ferroptosis regulation by Cap'n'collar family transcription factors. J Biol Chem 2024; 300:107583. [PMID: 39025451 PMCID: PMC11387702 DOI: 10.1016/j.jbc.2024.107583] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 03/29/2024] [Revised: 07/09/2024] [Accepted: 07/11/2024] [Indexed: 07/20/2024] Open
Abstract
Ferroptosis is an iron-dependent cell death mechanism that may be important to prevent tumor formation and useful as a target for new cancer therapies. Transcriptional networks play a crucial role in shaping ferroptosis sensitivity by regulating the expression of transporters, metabolic enzymes, and other proteins. The Cap'n'collar (CNC) protein NFE2 like bZIP transcription factor 2 (NFE2L2, also known as NRF2) is a key regulator of ferroptosis in many cells and contexts. Emerging evidence indicates that the related CNC family members, BTB domain and CNC homolog 1 (BACH1) and NFE2 like bZIP transcription factor 1 (NFE2L1), also have roles in ferroptosis regulation. Here, we comprehensively review the role of CNC transcription factors in governing cellular sensitivity to ferroptosis. We describe how CNC family members regulate ferroptosis sensitivity through modulation of iron, lipid, and redox metabolism. We also use examples of ferroptosis regulation by CNC proteins to illustrate the flexible and highly context-dependent nature of the ferroptosis mechanism in different cells and conditions.
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Affiliation(s)
| | - Scott J Dixon
- Department of Biology, Stanford University, Stanford, California, USA.
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Abstract
Ferroptosis is a non-apoptotic cell death mechanism characterized by iron-dependent membrane lipid peroxidation. Here, we review what is known about the cellular mechanisms mediating the execution and regulation of ferroptosis. We first consider how the accumulation of membrane lipid peroxides leads to the execution of ferroptosis by altering ion transport across the plasma membrane. We then discuss how metabolites and enzymes that are distributed in different compartments and organelles throughout the cell can regulate sensitivity to ferroptosis by impinging upon iron, lipid and redox metabolism. Indeed, metabolic pathways that reside in the mitochondria, endoplasmic reticulum, lipid droplets, peroxisomes and other organelles all contribute to the regulation of ferroptosis sensitivity. We note how the regulation of ferroptosis sensitivity by these different organelles and pathways seems to vary between different cells and death-inducing conditions. We also highlight transcriptional master regulators that integrate the functions of different pathways and organelles to modulate ferroptosis sensitivity globally. Throughout this Review, we highlight open questions and areas in which progress is needed to better understand the cell biology of ferroptosis.
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Affiliation(s)
- Scott J Dixon
- Department of Biology, Stanford University, Stanford, CA, USA.
| | - James A Olzmann
- Department of Molecular and Cell Biology, University of California, Berkeley, Berkeley, CA, USA.
- Department of Nutritional Sciences and Toxicology, University of California, Berkeley, Berkeley, CA, USA.
- Chan Zuckerberg Biohub - San Francisco, San Francisco, CA, USA.
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