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Epigenetic Mechanisms in Gene Regulation Course

USD $59.00 USD $249.00Price range: USD $59.00 through USD $249.00

This one-month program explores the mechanisms of epigenetics, including DNA methylation and histone modification, to understand gene regulation and its impact on health and disease. It equips participants with skills in modern techniques and fosters discussions on ethical implications.

Aim

This course explains how epigenetic mechanisms regulate gene expression without changing the DNA sequence. Participants will learn the major layers of epigenetic control—DNA methylation, histone modifications, chromatin remodeling, and non-coding RNAs—and how these processes shape development, cell identity, disease progression, and therapy response. The program includes case-based learning and a final mini-project to connect epigenetic theory to real biological questions.

Program Objectives

  • Understand Epigenetic Fundamentals: Learn what epigenetics is and how it differs from genetics.
  • Master Core Mechanisms: DNA methylation, histone marks, chromatin remodeling, and non-coding RNA regulation.
  • Link to Gene Expression: Understand how epigenetic marks influence transcription and cell identity.
  • Epigenetics in Disease: Explore cancer, metabolic disorders, neurobiology, and immune regulation examples.
  • Epigenetic Tools & Methods: Learn common lab and sequencing approaches at a conceptual + practical level.
  • Interpretation & Limits: Understand causation vs correlation, tissue specificity, and confounders.
  • Hands-on Outcome: Build an epigenetic regulation map or analysis plan as a final project.

Program Structure

Module 1: Epigenetics — The Language Above DNA

  • Genetics vs epigenetics: what changes and what stays constant.
  • Cell identity: how the same genome produces different cell types.
  • Epigenetic inheritance and stability: what is heritable vs reversible.
  • Key concept: chromatin as a dynamic regulator of transcription.

Module 2: Chromatin Architecture & Nucleosome Basics

  • DNA packaging: nucleosomes, histones, and chromatin states.
  • Euchromatin vs heterochromatin: accessibility and gene activity.
  • Enhancers, promoters, silencers: regulatory elements and accessibility.
  • 3D genome concept: looping and long-range regulation (overview).

Module 3: DNA Methylation and Gene Silencing

  • What DNA methylation is (CpG sites) and how it affects transcription.
  • DNMTs and demethylation concepts (writers/erasers).
  • Imprinting and X-chromosome inactivation (key examples).
  • Methylation changes in cancer and aging (overview).

Module 4: Histone Modifications — Writers, Readers, Erasers

  • Common histone marks: acetylation, methylation, phosphorylation (overview).
  • How histone acetylation opens chromatin and supports transcription.
  • Activating vs repressive marks and “histone code” thinking.
  • Epigenetic enzymes as drug targets (HDAC inhibitors, etc. overview).

Module 5: Chromatin Remodeling Complexes

  • What remodeling complexes do: sliding, ejecting, or restructuring nucleosomes.
  • SWI/SNF concept and cancer links (overview).
  • Accessibility and transcription factor binding: why remodeling is critical.
  • Interplay with histone marks and DNA methylation.

Module 6: Non-Coding RNAs in Epigenetic Regulation

  • miRNAs, lncRNAs, and their roles in gene regulation.
  • How lncRNAs guide chromatin modifiers to specific genomic regions (concept).
  • RNA-mediated silencing and chromatin state changes (overview).
  • Clinical relevance: non-coding RNAs as biomarkers (overview).

Module 7: Epigenetics in Development, Immunity & Disease

  • Developmental epigenetics: differentiation and lineage commitment.
  • Immune cell programming: activation, tolerance, and memory (overview).
  • Cancer epigenetics: tumor suppressor silencing, enhancer hijacking.
  • Neuroepigenetics and metabolic epigenetics: environment–gene regulation links.

Module 8: Epigenetic Tools & Methods (Concept + Workflow View)

  • Wet-lab methods overview: bisulfite conversion, ChIP concept, ATAC concept.
  • Sequencing outputs: methylation maps, histone mark peaks, accessibility profiles.
  • Experimental design basics: controls, replicates, tissue specificity.
  • How to interpret datasets responsibly: confounders and batch effects.

Module 9: Epigenetic Therapeutics & Future Directions

  • Why epigenetic changes are attractive therapeutic targets (reversible nature).
  • Epigenetic drugs overview: DNMT inhibitors, HDAC inhibitors, emerging targets.
  • Precision epigenome editing (overview): CRISPR-based epigenetic modulation concept.
  • Where the field is going: single-cell epigenomics and multi-omics integration (overview).

Final Project

  • Create an Epigenetic Regulation Map or Epigenetics Study Plan for a chosen gene/pathway.
  • Include: hypothesized regulatory marks, mechanism summary, experiment/analysis approach, and interpretation plan.
  • Example projects: methylation-mediated silencing of a tumor suppressor, histone mark changes during differentiation, epigenetic regulation of inflammatory genes, enhancer regulation in cancer.

Participant Eligibility

  • UG/PG/PhD students in Genetics, Biotechnology, Molecular Biology, Biochemistry, or related fields
  • Researchers working in gene regulation, cancer biology, developmental biology, or immunology
  • Professionals entering omics, epigenomics, or translational research
  • Basic knowledge of DNA, RNA, and gene expression is recommended

Program Outcomes

  • Mechanism Mastery: Understand the major epigenetic layers controlling gene expression.
  • Systems Thinking: Ability to connect chromatin state changes to phenotypes and disease outcomes.
  • Method Awareness: Understand common epigenetics experimental and sequencing workflows.
  • Interpretation Discipline: Know limitations, confounders, and how to avoid overclaiming.
  • Portfolio Deliverable: A gene/pathway-focused epigenetics map or plan you can showcase.

Program Deliverables

  • Access to e-LMS: Full access to course content and reference resources.
  • Learning Toolkit: Epigenetic mark cheat-sheet, mechanism mapping template, experiment planning worksheet.
  • Case-Based Exercises: Cancer, development, and immune regulation scenarios.
  • Project Guidance: Mentor support for building your final epigenetics map/study plan.
  • Final Assessment: Certification after assignments + capstone submission.
  • e-Certification and e-Marksheet: Digital credentials provided upon successful completion.

Future Career Prospects

  • Epigenetics Research Intern / Associate
  • Omics Research Assistant (Epigenomics / Transcriptomics track)
  • Genomics & Bioinformatics Support Associate
  • Translational Research Associate (Gene Regulation)
  • Scientific Content / Education Specialist (Molecular Biology)

Job Opportunities

  • Academic & Research Institutes: Epigenetics, cancer biology, developmental biology labs.
  • Biotech & Pharma: Epigenetic drug discovery and translational research teams.
  • Clinical Genomics & CROs: Omics analysis support and biomarker programs.
  • Healthtech & Genomics Startups: Multi-omics platforms, precision medicine analytics, biomarker discovery teams.
Category

E-LMS, E-LMS+Videos, E-LMS+Videos+Live

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What You’ll Gain

  • Full access to e-LMS
  • Publication opportunity
  • Self-assessment & final exam
  • e-Certificate

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Feedbacks

I thank you for delivering such an informative and interesting workshop. I would like to work with More you to learn and acquire more knowledge from you.
USHASI DAS : 01/07/2025 at 3:03 pm

Contents were excellent


Surya Narain Lal : 03/11/2025 at 6:09 pm


Riadh Badraoui : 10/07/2024 at 11:22 am

good


Sony Katepaka : 12/18/2024 at 1:02 pm

In Silico Molecular Modeling and Docking in Drug Development

The workshop was very well designed and explained in easy language. Thanks for sharing your More knowledge
Kush Shrivastav : 02/12/2024 at 4:08 pm

excellent


Hemalata Wadkar : 12/19/2024 at 3:41 pm

Overall, the workshop was conducted with professionalism and easy-to-follow teaching methods, More allowing us to better understand and grasp the concepts of mathematical models and infectious disease analysis, without overly intimidating the complexity of the mathematics involved.
If we could have files with more exercises, that would be great, and we could be added to a WhatsApp group where we can see what other colleagues around the world are doing and ask questions if necessary.

Joel KOSIANZA BELABO : 05/17/2025 at 3:31 pm

Biological Sequence Analysis using R Programming

Very efficient


Kashung Shangamla : 02/14/2024 at 3:57 pm