Cell: The Unit of Life
ЁЯУР Formula & Cheat Sheet (English)
Quick Revision Notes & Key Concepts
Class 11 Biology тАФ Chapter 8: Cell: The Unit of Life (рдХреЛрд╢рд┐рдХрд╛: рдЬреАрд╡рди рдХреА рдЗрдХрд╛рдИ)
1. Fundamental Concepts & Discoveries (рдореВрд▓ рдЕрд╡рдзрд╛рд░рдгрд╛рдПрдВ рдПрд╡рдВ рдЦреЛрдЬреЗрдВ)
- Cell (рдХреЛрд╢рд┐рдХрд╛): The fundamental, structural, and functional unit of all living organisms.
- Anton von Leeuwenhoek: First saw and described a live cell.
- Robert Hooke: Discovered the cell (dead cork cell).
- Robert Brown: Discovered the Nucleus (рдХреЗрдВрджреНрд░рдХ) in 1831.
2. Cell Theory (рдХреЛрд╢рд┐рдХрд╛ рд╕рд┐рджреНрдзрд╛рдВрдд)
- Matthias Schleiden (1838): Observed that all plants are composed of different kinds of cells.
- Theodore Schwann (1839): Reported that animal cells have a thin outer layer (now called plasma membrane). He concluded that the presence of a cell wall is a unique character of plant cells.
- Rudolf Virchow (1855): Modified the theory and gave the phrase "Omnis cellula-e-cellula" (All cells arise from pre-existing cells).
Modern Cell Theory Postulates:
- All living organisms are composed of cells and products of cells.
- All cells arise from pre-existing cells.
3. Prokaryotic vs. Eukaryotic Cells (рдкреНрд░реЛрдХреЗрд░рд┐рдпреЛрдЯрд┐рдХ рдмрдирд╛рдо рдпреВрдХреЗрд░рд┐рдпреЛрдЯрд┐рдХ рдХреЛрд╢рд┐рдХрд╛)
| Feature / Character | Prokaryotic Cell | Eukaryotic Cell |
|---|---|---|
| Nuclear Membrane | Absent | Present |
| Membrane-bound Organelles | Absent | Present (Mitochondria, ER, Golgi, etc.) |
| Ribosome Type | 70S type (50S + 30S) | 80S type (60S + 40S) [70S in organelle] |
| Genetic Material | Naked circular DNA (Nucleoid) | Linear DNA wrapped around Histones |
| Cell Wall | Made of Peptidoglycan / Murein | Made of Cellulose (Plants) / Chitin (Fungi) |
| Examples | Bacteria, BGA, Mycoplasma, PPLO | Protists, Plants, Fungi, Animals |
4. Detailed Prokaryotic Cell Structure
-
Cell Envelope (рдХреЛрд╢рд┐рдХрд╛ рдЖрд╡рд░рдг): Consists of 3 tightly bound layers:
- Glycocalyx: Outermost layer. Loose sheath = Slime layer; Thick and tough = Capsule.
- Cell Wall: Determines shape and provides strong structural support.
- Plasma Membrane: Selectively permeable; interacts with the outside world.
-
Special Structures:
- Mesosomes (рдореЗрд╕реЛрд╕реЛрдо): Infoldings of plasma membrane in bacteria. Help in cell wall formation, DNA replication, and respiration.
- Chromatophores: Pigment-containing membranous infoldings (e.g., Cyanobacteria).
- Flagella: Composed of 3 parts тАФ Filament, Hook, and Basal body.
- Pili & Fimbriae: Surface structures for attachment (Pili are tubular, made of pilin protein).
- Inclusion Bodies: Reserve material stored in cytoplasm (e.g., Phosphate granules, Cyanophycean granules, Glycogen granules, Gas vacuoles).
5. Cell Membrane & Cell Wall
Fluid Mosaic Model (рддрд░рд▓ рдореЛрдЬреЗрдХ рдореЙрдбрд▓)
- Proposed by Singer and Nicolson (1972).
- Membrane is composed of a lipid bilayer (mainly phosphoglycerides) with embedded proteins.
- Lipid arrangement: Polar hydrophilic heads point outward, non-polar hydrophobic tails point inward.
- Membrane Proteins:
- Integral Proteins: Partially or totally buried in the membrane.
- Peripheral Proteins: Lie on the surface of the membrane.
- Ratio in Human Erythrocyte Membrane: ~52% Protein, 40% Lipid.
Transport Across Membrane
- Passive Transport: Movement along concentration gradient without ATP (e.g., Simple Diffusion, Osmosis).
- Active Transport: Movement against concentration gradient using energy (ATP) (e.g., $Na^+/K^+$ Pump).
6. The Endomembrane System (рдЕрдВрддрдГ рдЭрд┐рд▓реНрд▓реАрддрдВрддреНрд░)
Includes organelle functions that are coordinated: ER + Golgi Apparatus + Lysosomes + Vacuoles. (Note: Mitochondria, Chloroplasts, and Peroxisomes are NOT part of the endomembrane system).
A. Endoplasmic Reticulum (ER - рдЕрдВрддрдГрджреНрд░рд╡реНрдпреА рдЬрд╛рд▓рд┐рдХрд╛)
- Rough ER (RER): Bears ribosomes on its surface. Active in protein synthesis and secretion.
- Smooth ER (SER): Lacks ribosomes. Main site for lipid/steroid hormone synthesis.
B. Golgi Apparatus (рдЧреЙрд▓реНрдЬреА рдХрд╛рдп)
- Discovered by Camillo Golgi (1898).
- Consists of flat, disc-shaped sacs called cisternae ($0.5,\mu m - 1.0,\mu m$).
- Convex face (Cis/Forming face): Receives materials from ER.
- Concave face (Trans/Maturing face): Discharges modified materials.
- Function: Modification, packaging, and secretion of proteins; site of glycoprotein and glycolipid formation.
C. Lysosomes (рд▓рдпрдирдХрд╛рдп)
- Formed by packaging in Golgi apparatus.
- Rich in hydrolytic enzymes (hydrolases тАФ lipases, proteases, carbohydrates) active at acidic pH.
- Known as the "Suicide Bags" of the cell.
D. Vacuoles (рд░рд╕рдзрд╛рдиреА)
- Bound by a single membrane called Tonoplast (selectively permeable).
- Can occupy up to 90% volume of a plant cell.
- Contains water, sap, excretory products.
- Amoeba: Contractile vacuole (for excretion/osmoregulation).
7. Semiautonomous Organelles
A. Mitochondria (рд╕реВрддреНрд░рдХрдгрд┐рдХрд╛ - Powerhouse of the Cell)
- Double membrane-bound organelle.
- Outer membrane: Smooth and continuous.
- Inner membrane: Forms infoldings called Cristae (increases surface area).
- Matrix: Inside inner membrane; contains circular DNA, 70S ribosomes, and enzymes for Kreb's cycle.
- Function: Site of aerobic respiration and production of cellular energy (ATP).
B. Plastids (рд▓рд╡рдХ)
Found in plant cells and Euglenoids. Classified into 3 types based on pigments:
- Chloroplasts (рд╣рд░рд┐рддрд▓рд╡рдХ): Contain chlorophyll and carotenoids; function in photosynthesis.
- Chromoplasts (рд╡рд░реНрдгреАрд▓рд╡рдХ): Contain fat-soluble pigments like carotene and xanthophylls (yellow, orange, red color).
- Leucoplasts (рдЕрд╡рд░реНрдгреАрд▓рд╡рдХ): Colorless storage plastids.
- Amyloplasts: Store Carbohydrates (Starch) тАФ e.g., Potato.
- Elaioplasts: Store Fats and Oils.
- Aleuroplasts: Store Proteins.
Internal Structure of Chloroplast:
- Double membrane-bound.
- Stroma: Fluid space inside inner membrane; contains 70S ribosomes, circular DNA, and Rubisco enzyme.
- Thylakoids: Flattened membranous sacs arranged in stacks called Grana.
- Stroma Lamellae: Flat tubules connecting thylakoids of different grana.
8. Ribosomes, Cytoskeleton, Cilia & Centrosome
A. Ribosomes (рд░рд╛рдЗрдмреЛрд╕реЛрдо)
- Discovered by George Palade (1953) (Granular structures, no membrane).
- Composed of RNA + Proteins.
- Prokaryotic Ribosome (70S): Subunits $50S + 30S$.
- Eukaryotic Ribosome (80S): Subunits $60S + 40S$.
- (S = Svedberg's Unit / Sedimentation Coefficient).
B. Cytoskeleton (рдХреЛрд╢рд┐рдХрд╛ рдХрдВрдХрд╛рд▓)
- Network of filamentous proteinaceous structures in cytoplasm.
- Composed of: Microtubules (Tubulin), Microfilaments (Actin), and Intermediate filaments.
- Functions: Mechanical support, motility, maintenance of cell shape.
C. Cilia and Flagella
- Hair-like outgrowths of cell membrane.
- Core is called Axoneme, containing microtubules running parallel to the long axis.
- Arrangement: $9 + 2$ pattern (9 peripheral doublets + 2 central singlets).
- Emerges from a structure called the Basal Body (centriole-like).
D. Centrosome and Centrioles (рддрд╛рд░рдХрдХрд╛рдп рдПрд╡рдВ рддрд╛рд░рдХрдХреЗрдВрджреНрд░)
- Centrosome contains two cylindrical structures called Centrioles perpendicular to each other.
- Structure has a Cartwheel pattern with $9 + 0$ arrangement of peripheral triplet microtubules.
- Forms the basal body of cilia/flagella and spindle apparatus during cell division.
9. Nucleus and Chromosomes
A. Nucleus (рдХреЗрдВрджреНрд░рдХ)
- Stained by basic dyes; nuclear material named Chromatin by Flemming.
- Components:
- Nuclear Envelope: Two parallel membranes with perinuclear space ($10-50,nm$). Interrupted by Nuclear Pores.
- Nucleoplasm: Nuclear matrix containing nucleolus and chromatin.
- Nucleolus (рдХреЗрдВрджреНрд░рд┐рдХрд╛): Non-membrane bound site for active ribosomal RNA (rRNA) synthesis.
B. Chromosomes (рдЧреБрдгрд╕реВрддреНрд░)
Chromatin condenses into distinct chromosomes during cell division. Made of DNA, Basic proteins called Histones, non-histone proteins, and RNA.
Classification of Chromosomes based on Centromere Position:
Metacentric Sub-metacentric Acrocentric Telocentric
(V) (L) (J) (I)
o o o o
/ \ / \ / \ |
/ \ / \ / \ |
/ \ / \ / \ |
- Metacentric (рдордзреНрдпрдХреЗрдВрджреНрд░реА): Centromere in the middle, forming two equal arms ('V' shaped).
- Sub-metacentric (рдЙрдк-рдордзреНрдпрдХреЗрдВрджреНрд░реА): Centromere slightly away from middle, one shorter arm and one longer arm ('L' shaped).
- Acrocentric (рдЕрдЧреНрд░рдХреЗрдВрджреНрд░реА): Centromere situated close to its end, forming one extremely short and one long arm ('J' shaped).
- Telocentric (рдЕрдВрддрдХреЗрдВрджреНрд░реА): Terminal centromere ('I' shaped).
- Satellite Chromosome: Certain chromosomes have non-staining secondary constrictions at a constant location, giving the appearance of a small fragment called a Satellite.
C. Microbodies (рд╕реВрдХреНрд╖реНрдордХрд╛рдп)
- Minute, single-membrane bound vesicles containing various enzymes present in both plant and animal cells (e.g., Peroxisomes).
10. Key Formulas & Numerical Relationships
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Sedimentation Coefficients: $$\text{Prokaryotic Ribosome } (70S) = 50S + 30S$$ $$\text{Eukaryotic Ribosome } (80S) = 60S + 40S$$ (Note: Subunits do not add up mathematically due to sedimentation density shape factors).
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Microtubule Arrangements: $$\text{Cilia / Flagella Axoneme} = (9 \times 2) + 2 = \text{9 peripheral doublets + 2 central singlets}$$ $$\text{Centriole / Basal Body} = (9 \times 3) + 0 = \text{9 peripheral triplets + 0 central microtubules}$$