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Human 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.

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