Biology · Unit 2

Characteristics of Life & Chemistry

A readable version of the review deck — every slide, in order. Tap a topic to jump to it.

Part 1

Characteristics of Life

ObjectivesWhat you should be able to do

IntroWhat is biology?

bio- (Greek) = life, living.   -logos = study.

Biology is the study of the diverse forms, processes, and systems of life — with many branches: zoology, botany, genetics, microbiology, ecology, biochemistry, and more.

Warm-upWhat are some examples of living things? What do they all have in common?

Core listThe 9 characteristics of life

Living things…

  1. Are organized
  2. Reproduce
  3. Grow and develop
  4. Acquire materials and energy
  5. Respond to the environment
  6. Regulate / maintain homeostasis
  7. Are composed of cells (one or many)
  8. Have genetic material
  9. Evolve
Memory trickHold them in 3 buckets of 3 — build & continue (organized · cells · genes), run the machine (energy · homeostasis · respond), change over time (grow · reproduce · evolve).

1Living things are organized

Life is built in nested levels — each level is made of the one below it.

⚛️Atom→ 🧬Molecule→ 🔬Organelle→ 🦠Cell→ 🧫Tissue→ ❤️Organ→ 🫀Organ system→ 🐘Organism→ 🐘🐘Population→ 🦓Community→ 🌍Ecosystem→ 🌐Biosphere

Smallest → largest (scroll sideways →)

Emergent properties: complex traits or behaviors that arise from simpler interactions. Each level is more complex than the one before it — "the whole is greater than the sum of its parts." (Like separate bricks vs. a house.)

2Living things reproduce

Reproduction: the ability of an organism to copy itself.

3Living things grow & develop

Inherited information carried by genes (DNA) controls an organism's pattern of growth and development.

Growth

Increase in mass and size of a body or organs — usually by cells multiplying.

Development

Physiological and functional maturation (e.g. tadpole → frog).

4Living things acquire materials & energy

For most organisms the ultimate source of energy is the sun.

Autotrophs (producers)

Capture the sun's energy through photosynthesis.

Heterotrophs (consumers)

Can't photosynthesize — must get nutrients from other sources.

🌱Photosynthesizer 🐄Herbivore 🦁Carnivore 🐻Omnivore 🍄Decomposer
See the diagrams pageEnergy flow, food chains & the decomposer loop are drawn out there.

5Living things respond to the environment

Organisms respond to stimuli — to get food (energy), for defense, and for survival. (A stimulus is detected by a receptor → sensory neuron → brain/spinal cord → motor neuron → effector.)

Phototropism

A response to the stimulus of light (a plant bending toward a lamp).

Geotropism

A response to the stimulus of gravity — shoots grow up (away), roots grow down (toward).

6Living things regulate their internal environment

Homeostasis: maintenance of stable internal conditions.

Example — jackrabbits have disproportionately large ears to deal with desert heat:

7Living things are composed of cells

Cell theory (1838, Schleiden & Schwann):

  1. All life forms are made from one or more cells.
  2. Cells only arise from pre-existing cells.
  3. The cell is the smallest form of life.

8Living things have genetic material

What is a gene? A portion of a DNA and/or RNA molecule that codes for (makes) another molecule (RNA or protein).

🧬DNA →transcription 📜RNA →translation 🧶Protein

9Living things evolve

Species change over time. All living things are descendants of single-celled organisms.

One single origin? We may never know for sure — but the tree of life connects Bacteria, Archaea, and Eukaryotes back to a common root.

?Is a virus living?

Capsid: a protein shell that surrounds a virus's genetic material (DNA or RNA).

A virus lifecycle: ① attaches to a host cell → ② enters (capsid comes apart) → ③ hijacks the cell to copy its genome and make viral proteins → ④ new viruses assemble → ⑤ release, off to infect a new cell.

The debateA virus has genes and can evolve, but has no cells and no metabolism, and can't reproduce without a host. Argue a side. (Fully worked out on the diagrams page.)
Part 2

Chemistry: Water & Bonds

WaterProperties of water

  1. Water is polar.
  2. Water is an excellent solvent.
  3. Water has cohesive and adhesive properties (surface tension; capillary action).
  4. Water is less dense as a solid than as a liquid.
  5. Water has high heat capacity (specific heat).
  6. Water has high heat of vaporization.

Almost every special property below traces back to #1 — polarity.

WaterPolarity & why water dissolves things

Polarity: the distribution of electrical charge among the atoms connected by a chemical bond.

Water is a polar molecule: oxygen pulls the shared electrons closer, so O is slightly negative (δ−) and each H is slightly positive (δ+).

That polarity makes water a great solvent:

WaterHydrophilic vs hydrophobic

💧 Hydrophilic — "water-loving"

  • Attracts water
  • Polar

🧈 Hydrophobic — "afraid of water"

  • Repels water
  • Nonpolar (e.g. butter, oil)

Like dissolves like: polar mixes with polar, nonpolar with nonpolar.

WaterCohesion & adhesion

Cohesion: hydrogen bonds between water molecules hold them together.
Hydrogen bonds occur when H is bonded to N, O, or F.

WaterIce floats · specific heat

Less dense as a solid: in ice, hydrogen bonds lock molecules into a spacious, stable lattice — so ice is less dense than liquid water. That's why ice floats!

Specific heat: the heat required to raise the temperature 1 °C. Water's is high, so it resists temperature change and moderates Earth's temperatures (water heats/cools slower than sand).
Heat of vaporization: the energy needed to change one gram of a liquid to a gas at constant temperature. Water's is high too.

ChemistryElements of life

About 25 elements are essential for life. Six of them — CHNOPS — make up ~98% of living matter:

Carbon · Hydrogen · Oxygen · Nitrogen · Phosphorus · Sulfur

Rough makeup of the human body:

Oxygen65%
Carbon18%
Hydrogen10%
Nitrogen3%
Others~4%

Trace elements (small amounts): Ca, K, Na, Mg, Mn, Fe, Co, Cu, Zn, Si, Cl.

BondsIntramolecular vs intermolecular forces

Intra­molecular

Hold atoms together inside a molecule.

  • Ionic — attraction between oppositely charged ions (electrons transferred). Weaker; broken by water.
  • Covalent — sharing of electrons; can be polar (shared unequally) or nonpolar (shared equally).

Inter­molecular

Hold different molecules together in a substance.

  • Hydrogen bonds
  • Hydrophobic interactions

Tip for the name: intra = "within" one molecule · inter = "between" molecules.

BondsBonds in biology

Whether a bond is polar depends on how equally the two atoms share electrons.

Polar (unequal sharing)Nonpolar (equal sharing)
C–OC–H
C=OC–C
C–NC=C
N–HO=O
O–HN–N
Amphipathic molecules have both polar and nonpolar regions. A fatty acid is the classic example: a polar –COOH "head" 💧 and a long nonpolar hydrocarbon "tail" 🧈.

BondsFunctional groups

Large biological molecules are generally built on a carbon skeleton (carbon + hydrogen). Extra atoms appear as functional groups that give the molecule its behavior.

GroupStructureProperty
HydroxylR–OHPolar
MethylR–CH₃Nonpolar
CarbonylR–C(=O)–R′Polar
CarboxylR–COOHCharged; releases H⁺ → acidic
AminoR–NH₂Charged; accepts H⁺ → basic
PhosphateR–OPO₃Charged; releases H⁺ → acidic
SulfhydrylR–SHPolar
PracticeWhich groups can you spot in glucose (lots of –OH hydroxyls) and testosterone (hydroxyl + carbonyl + methyls)?

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