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Nanomedicine: The Future of Disease Management

INR ₹2,499.00 INR ₹24,999.00Price range: INR ₹2,499.00 through INR ₹24,999.00

Explore the future of healthcare with our Nanomedicine program, focusing on the application of nanotechnology to enhance disease management through innovative drug delivery systems and treatments.

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Aim

This course introduces how nanomedicine is shaping the future of disease management through targeted drug delivery, advanced diagnostics, image-guided therapy, and personalized treatment strategies. Participants will learn the fundamentals of nanoparticle design, biological interactions, delivery barriers, safety considerations, and translational thinking—along with real-world case frameworks and how nanomedicine solutions are evaluated for clinical and industrial readiness.

Program Objectives

  • Understand Nanomedicine Fundamentals: Learn how nano-scale design changes drug behavior, targeting, and bioavailability.
  • Explore Nano-Platforms: Study key carriers (liposomes, polymeric NPs, dendrimers, inorganic NPs, exosome-inspired systems).
  • Targeted Delivery Thinking: Understand passive/active targeting, controlled release, and overcoming biological barriers.
  • Diagnostics & Theranostics: Learn nano-enabled imaging, biosensing, and combined diagnosis-therapy approaches.
  • Safety & Translation: Understand toxicity, immunogenicity, manufacturing, and regulatory readiness concepts.
  • Hands-on Planning: Build a concept-level nanomedicine solution proposal for a selected disease area.

Program Structure

Module 1: What Nanomedicine Can Change in Healthcare

  • Why conventional therapies fail: off-target toxicity, poor bioavailability, resistance, and late detection.
  • What nano enables: targeted delivery, controlled release, better imaging, and multi-functional therapies.
  • Where nanomedicine is used: cancer, infections, inflammation, CNS disorders, metabolic and cardiovascular diseases (overview).
  • Therapeutic goals: efficacy, safety, patient adherence, and cost-to-benefit thinking.

Module 2: Nano-Bio Interactions (How the Body “Sees” Nanoparticles)

  • Size, shape, charge, surface chemistry: why they control circulation and uptake.
  • Protein corona concept and its implications for targeting.
  • Immune recognition: clearance pathways and stealth strategies (PEGylation concepts).
  • Cellular uptake basics: endocytosis pathways and intracellular trafficking.

Module 3: Nanocarrier Platforms for Drug Delivery

  • Liposomes and lipid nanoparticles: what makes them suitable for drugs and nucleic acids.
  • Polymeric nanoparticles and micelles: controlled release and stability concepts.
  • Dendrimers and nanogels: high loading and surface functionalization advantages.
  • Inorganic nanoparticles: gold, iron oxide, silica (therapy + imaging roles, overview).
  • Hybrid and biomimetic systems: membrane-coated and exosome-inspired concepts.

Module 4: Targeting Strategies & Controlled Release

  • Passive targeting concepts (EPR effect overview) and its real-world limitations.
  • Active targeting: ligands, antibodies, peptides—how targeting is designed.
  • Stimuli-responsive systems: pH, enzymes, redox, temperature, light (conceptual).
  • Controlled release profiles: burst vs sustained release and why it matters clinically.

Module 5: Nanodiagnostics & Theranostics

  • Nano-biosensing basics: signal amplification, surface functionalization, specificity challenges.
  • Imaging agents: contrast enhancement concepts for MRI/CT/optical imaging (overview).
  • Theranostics: combining imaging + therapy in a single nano-platform.
  • Decision-making value: early detection, monitoring, and treatment personalization.

Module 6: Disease-Focused Case Frameworks

  • Cancer: tumor targeting, drug resistance, microenvironment barriers (overview).
  • Infectious diseases: antimicrobial delivery, biofilm challenges, localized therapy concepts.
  • Inflammation & autoimmune disorders: targeted immunomodulation concepts.
  • CNS delivery: blood–brain barrier challenge and delivery strategies (intro-level).
  • Cardiometabolic diseases: targeted vascular delivery and sustained release (overview).

Module 7: Safety, Toxicology & Responsible Design

  • Key safety risks: toxicity, immunogenicity, oxidative stress, organ accumulation.
  • Biodistribution and clearance: what “safe elimination” means.
  • In vitro vs in vivo translation gaps: why lab success may not scale to patients.
  • Responsible design: simplifying formulation, minimizing risky components, and dose realism.

Module 8: Manufacturing, Quality & Regulatory Readiness (Concept-Level)

  • Scale-up challenges: reproducibility, stability, sterilization, and shelf-life.
  • Quality attributes: size distribution, encapsulation efficiency, endotoxin control, batch consistency.
  • Formulation stability: aggregation, leakage, and storage conditions.
  • Translational pipeline: preclinical evaluation, clinical testing overview, documentation mindset.

Final Project

  • Develop a concept-level nanomedicine solution for a chosen disease area.
  • Define: therapeutic goal, target tissue/cells, nano-platform choice, payload, targeting strategy, and release profile.
  • Create a basic evaluation plan: characterization, in vitro testing concepts, safety checks, and stability plan.
  • Deliverables: design brief + workflow diagram + risk/limitations note (translation-aware).

Participant Eligibility

  • UG/PG/PhD students in biotechnology, nanotechnology, pharmacy, chemistry, and biomedical engineering
  • Researchers working on drug delivery, biosensing, biomaterials, and theranostics
  • Healthcare and life-science professionals exploring emerging therapy technologies
  • Industry professionals in pharma, diagnostics, and medical devices
  • Entrepreneurs and innovators building nano-enabled healthcare solutions

Program Outcomes

  • Nanomedicine Fundamentals: Understand how nano-platforms improve therapy and diagnostics.
  • Design Capability: Ability to select a nano-carrier and justify targeting and release strategies.
  • Translation Awareness: Recognize safety, manufacturability, and evaluation requirements early.
  • Case-Based Thinking: Apply nanomedicine frameworks to multiple disease areas responsibly.
  • Portfolio Deliverable: A complete nanomedicine concept project you can present in interviews or proposals.

Program Deliverables

  • Access to e-LMS: Full access to course materials, templates, and case examples.
  • Hands-on Assignments: Platform selection, targeting plan, and evaluation checklist exercises.
  • Project Guidance: Expert feedback for your capstone design and documentation.
  • Final Assessment: Certification after completion of assignments + final project submission.
  • e-Certification and e-Marksheet: Digital credentials provided upon successful completion.

Future Career Prospects

  • Nanomedicine / Drug Delivery Research Associate
  • Biomaterials & Nanoparticle Formulation Scientist (Associate Level)
  • Theranostics & Biosensing R&D Associate
  • Translational Research Associate (Nanotech Healthcare)
  • Pharma / Biotech Product Development Associate
  • Clinical Research Support (Nano-Enabled Therapies)

Job Opportunities

  • Pharma & Biotech Companies: Drug delivery, formulation development, translational R&D.
  • Diagnostics & Medical Device Firms: Nano-enabled biosensors, imaging agents, theranostic tools.
  • Research Institutes & Universities: Nanomedicine, biomaterials, and clinical translation labs.
  • Hospitals & Clinical Research Centers: Trial support and translational evaluation teams.
  • Startups: Targeted therapy, biosensing, and personalized medicine innovation.
MODE

Online/ e-LMS

TYPE

Self Paced

Self Paced

Moderate

DURATION

1 Month

CATEGORY

E – LMS, E – LMS + Video, E – LMS + Video + Live

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Certification

  • Upon successful completion of the workshop, participants will be awarded a Certificate of Completion, validating their skills and knowledge in advanced AI ethics and regulatory frameworks. This certification can be added to your LinkedIn profile or shared with employers to demonstrate your commitment to ethical AI practices.

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Hall of Fame.

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