IndietroHuman Biology Exam 1 High-Yield Review Notes
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Characteristics of Life and Human Uniqueness
Defining Features of Life
Living organisms share several key characteristics that distinguish them from non-living matter.
Organization: Living things are composed of one or more cells, which are the basic units of life.
Metabolism: The ability to obtain and use energy for growth, maintenance, and reproduction.
Homeostasis: Regulation of internal environment to maintain a stable, constant condition.
Growth and Development: Increase in size and complexity over time.
Reproduction: Ability to produce new individuals.
Response to Stimuli: Ability to sense and react to environmental changes.
Evolutionary Adaptation: Populations change over generations through genetic variation and natural selection.
Example: Humans maintain a constant body temperature (homeostasis) despite changes in external temperature.
Unique Features of Humans
Bipedalism: Walking upright on two legs.
Opposable Thumbs: Thumbs that can touch the tips of other fingers, allowing for precise manipulation.
Large Brain: High brain-to-body size ratio, enabling complex thought and problem-solving.
Complex Language: Capacity for sophisticated verbal and written communication.
The Chemistry of Living Things
Atoms, Ions, and Isotopes
Understanding the basic units of matter is essential for studying biology.
Atom: The smallest unit of an element, consisting of protons, neutrons, and electrons.
Ion: An atom or molecule that has gained or lost electrons, resulting in a net charge.
Isotope: Atoms of the same element with different numbers of neutrons.
Example: Carbon-12 and Carbon-14 are isotopes of carbon; Na+ is a sodium ion.
Hydrogen Bonds and Water
Hydrogen bonds are weak attractions between polar molecules, crucial for the properties of water, proteins, and DNA.
Hydrogen Bond: Attraction between a hydrogen atom (attached to O, N, or F) and another electronegative atom.
Importance: Responsible for water's high boiling point, cohesion, and the structure of proteins and DNA.
Example: The double helix structure of DNA is stabilized by hydrogen bonds between base pairs.
Elements Common in the Human Body
Major Elements: Oxygen (O), Carbon (C), Hydrogen (H), Nitrogen (N), Calcium (Ca), Phosphorus (P).
Minor Elements: Potassium (K), Sulfur (S), Sodium (Na), Chlorine (Cl), Magnesium (Mg).
Example: Oxygen is the most abundant element in the human body by mass.
Biological Molecules
Carbohydrates: Composed of carbon, hydrogen, and oxygen. Monosaccharides (e.g., glucose, fructose) are the simplest forms.
Proteins: Polymers of amino acids. Examples include enzymes, hemoglobin, insulin, keratin.
Nucleic Acids: DNA and RNA. DNA stores genetic information; RNA is involved in protein synthesis.
Example: Hemoglobin is a protein that transports oxygen in the blood.
Structure and Function of Cells
Cell Types and Organelles
Cells are the fundamental units of life. Eukaryotic cells contain membrane-bound organelles.
Prokaryotes: Simple cells without a nucleus (e.g., bacteria). Note: Not a focus in this course.
Eukaryotes: Complex cells with a nucleus and organelles (e.g., human cells).
Organelles: Specialized structures within eukaryotic cells (e.g., nucleus, mitochondria, endoplasmic reticulum, Golgi apparatus, lysosomes).
Example: The mitochondrion is the site of ATP production in eukaryotic cells.
Cell Membrane Transport
Cells regulate the movement of substances across their membranes through various mechanisms.
Diffusion: Movement of solute particles from high to low concentration. No energy required.
Osmosis: Diffusion of water across a selectively permeable membrane from high to low water concentration.
Facilitated Diffusion: Movement of substances from high to low concentration via a protein channel. No energy required.
Active Transport: Movement of substances from low to high concentration using energy (ATP).
Exocytosis: Process by which substances are expelled from the cell using vesicles and ATP.
Endocytosis: Process by which substances are taken into the cell via vesicles and ATP.
Example: Sodium-potassium pump is an active transport mechanism that uses ATP to move ions against their concentration gradients.
Effects of Solutions on Cells
Solution Type | Relative Solute Concentration | Effect on Cell |
|---|---|---|
Isotonic | Equal to cell | No net movement of water; cell remains unchanged |
Hypertonic | Higher than cell | Water moves out; cell shrinks (crenation) |
Hypotonic | Lower than cell | Water moves in; cell swells (may burst) |
From Cells to Organ Systems
Tissues: Epithelial Tissue
Epithelial tissue covers body surfaces, lines cavities, and forms glands.
Types by Shape: Squamous (flat), Cuboidal (cube-shaped), Columnar (tall and column-like).
Types by Layers: Simple (one layer), Stratified (multiple layers).
Functions: Protection, absorption, secretion, filtration.
Locations: Skin, lining of digestive tract, glands.
Example: Simple columnar epithelium lines the small intestine for absorption.
Metabolism and Energy
Metabolism Overview
Metabolism refers to all chemical reactions in the body, including energy conversion.
Anabolism: Building larger molecules from smaller ones (requires energy).
Catabolism: Breaking down molecules to release energy.
Example: The breakdown of glucose during cellular respiration is a catabolic process.
ATP Production Pathways
Cells generate ATP through a series of metabolic pathways.
Glycolysis: Occurs in the cytoplasm; does not require oxygen (anaerobic); produces a small amount of ATP.
Citric Acid Cycle (Krebs Cycle): Occurs in the mitochondria; requires oxygen (aerobic).
Electron Transport Chain: Occurs in the inner mitochondrial membrane; requires oxygen; produces the most ATP.
Example: During intense exercise, muscles rely on glycolysis for quick ATP when oxygen is limited.
Key Equation for Cellular Respiration:
The Digestive System and Nutrition
Nutrient Absorption
The small intestine is the primary site for nutrient absorption, aided by structures that increase surface area.
Villi: Finger-like projections that increase the surface area for absorption.
Microvilli: Even smaller projections on villi, forming the brush border.
Example: Glucose and amino acids are absorbed through the villi into the bloodstream.
Accessory Organs
Pancreas: Produces digestive enzymes (e.g., amylase, lipase, proteases) that aid in the breakdown of carbohydrates, fats, and proteins.
Example: Pancreatic amylase breaks down starch into simple sugars.
Large Intestine
Main Function: Absorbs water, salts, vitamins, and minerals; not primarily involved in nutrient absorption for energy.
Example: Water reabsorption in the colon prevents dehydration.
The Skeletal System
Functions of the Skeletal System
Support: Provides structural framework for the body.
Protection: Shields vital organs (e.g., skull protects the brain).
Movement: Serves as attachment points for muscles.
Mineral Storage: Stores calcium and phosphorus.
Blood Cell Production: Occurs in bone marrow (hematopoiesis).
Joints, Tendons, and Ligaments
Joints: Points where two or more bones meet, allowing movement.
Tendons: Connect muscle to bone.
Ligaments: Connect bone to bone.
Example: The patellar tendon connects the quadriceps muscle to the tibia; the anterior cruciate ligament (ACL) connects bones in the knee.