Learning Objectives
5 objectives- Understand the fundamental structure and function of cells and their organelles.
- Explain the mechanisms of cell membrane transport and cellular energy production.
- Describe cell division processes and the role of genetics in inheritance.
- Analyze the molecular basis of DNA structure, replication, and gene expression.
- Evaluate the applications and implications of genetic engineering and cell signaling.
Content Outline
PreviewUnit 3111: Advanced Cell Biology and Genetics
1. Introduction to Cell Biology
1.1 Basic Principles of Cell Biology
- Definition and importance of cells in living organisms
- Overview of cell theory
1.2 Cell Structure and Function
- Cell types: prokaryotic vs eukaryotic cells
- Key cell organelles and their functions: nucleus, mitochondria, ribosomes, endoplasmic reticulum, Golgi apparatus, lysosomes, chloroplasts
1.3 Diversity of Cells
- Specialized cells in multicellular organisms
- Comparison of plant, animal, fungal, and bacterial cells
2. Cell Membrane and Transport Mechanisms
2.1 Structure of the Cell Membrane
- Phospholipid bilayer
- Membrane proteins: integral and peripheral
- Fluid mosaic model
2.2 Transport Mechanisms
- Passive transport: diffusion, osmosis, facilitated diffusion
- Active transport: pumps, endocytosis, exocytosis
- Role of transport in maintaining homeostasis
3. Cellular Metabolism and Energy Production
3.1 Overview of Cellular Metabolism
- Catabolic and anabolic pathways
3.2 Cellular Respiration
- Glycolysis, Krebs cycle, electron transport chain
- Role of mitochondria in ATP production
3.3 Photosynthesis
- Light-dependent and light-independent reactions
- Chloroplast function and significance
3.4 ATP: The Energy Currency
- ATP structure and role in cellular activities
4. Cell Division and the Cell Cycle
4.1 The Cell Cycle Phases
- Interphase: G1, S, G2 phases
- Checkpoints and regulation
4.2 Mitosis
- Stages: prophase, metaphase, anaphase, telophase, cytokinesis
- Importance in growth and repair
4.3 Meiosis
- Stages and significance
- Genetic variation through crossing over and independent assortment
5. Genetics and Inheritance
5.1 Principles of Genetics
- Mendelian genetics: laws of segregation and independent assortment
- Dominant, recessive, codominance, incomplete dominance
5.2 Inheritance Patterns
- Autosomal vs sex-linked traits
- Pedigree analysis
5.3 Genetic Disorders
- Examples and causes
- Role of mutations
5.4 DNA and Heredity
- DNA as the genetic material
6. DNA Structure and Replication
6.1 Structure of DNA
- Double helix model
- Nucleotide composition: sugar, phosphate, nitrogenous bases
- Complementary base pairing
6.2 DNA Replication Process
- Semi-conservative replication
- Enzymes involved: helicase, DNA polymerase, ligase
6.3 Importance of Accurate Replication
- Mutation prevention
- Implications for heredity and cell function
7. Gene Expression and Protein Synthesis
7.1 Transcription
- DNA to messenger RNA (mRNA)
- Role of RNA polymerase
- RNA processing: splicing, 5’ cap, poly-A tail
7.2 Translation
- mRNA to protein
- Role of ribosomes, tRNA, and amino acids
- Genetic code and codons
7.3 Regulation of Gene Expression
- Transcription factors
- Epigenetic influences
8. Genetic Engineering and Biotechnology
8.1 Genetic Engineering Techniques
- Recombinant DNA technology
- CRISPR-Cas9 and gene editing
8.2 Applications
- Genetically Modified Organisms (GMOs) in agriculture
- Gene therapy in medicine
- Research tools and ethical considerations
9. Cell Signaling and Communication
9.1 Importance of Cell Communication
- Coordination of cellular activities
9.2 Signaling Pathways
- Types: autocrine, paracrine, endocrine, juxtacrine
9.3 Molecules Involved
- Hormones, neurotransmitters, growth factors
- Cell surface receptors: G-protein coupled receptors, receptor tyrosine kinases
9.4 Signal Transduction Mechanisms
- Second messengers
- Cellular responses and feedback regulation
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