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Chemistry revision sheets

What Is an Active Site? Substrates and Specificity

An enzyme can be a chain of five hundred amino acids, yet the actual chemistry happens in a pocket built from barely a dozen of them. Find that pocket and you've found the enzyme's entire reason for existing. The short answer: the active site is the small region on an enzyme — usually a groove or pocket on its surface — where the substrate binds and the reaction is catalyzed. Its precise shape and chemistry are what make an enzyme specific to one substrate, and anything that changes that shape switches the enzyme off. What the active site actually is Picture the enzyme as a folded-up chain of amino acids. Folding brings certain amino acids — sometimes from completely different parts of the chain — together in space, forming a pocket with an exact geometry and an exact chemical personality: this corner slightly positive, that edge able to hydrogen-bond, a greasy patch at the bottom. That pocket is the active site, and it typically involves only a handful of the enzyme...

Enzyme vs Catalyst: What's the Difference?

Manganese dioxide makes hydrogen peroxide fizz into water and oxygen. So does a drop of blood. One is a gritty black powder, the other contains one of the fastest protein machines known — and both are doing the same catalytic job. So is an enzyme just a catalyst with a biology degree, or something more? The short answer: every enzyme is a catalyst, but not every catalyst is an enzyme. A catalyst is anything that speeds up a reaction without being consumed; an enzyme is a biological catalyst — a protein (occasionally RNA) made by a living cell, far bigger, far more specific, and far fussier about temperature and pH than the metals and powders of the chemistry lab. Quick comparison at a glance Feature Enzyme Inorganic (lab) catalyst What it is Protein (rarely RNA) made by cells Usually a metal or simple compound: Fe, Pt, Ni, MnO₂, V₂O₅ Size Enormous — thousands to millions of daltons Tiny — atoms or small formula units Specificity Usually one substrate or reac...

What Is an Enzyme? Biological Catalysts Explained

Right now, without you asking it to, your body is running thousands of different chemical reactions — digesting breakfast, copying DNA, turning glucose into energy. Left alone, most of those reactions would take years. Your cells run them in milliseconds, and the machines that make that possible are enzymes. The short answer: an enzyme is a biological catalyst — a molecule, almost always a protein , that speeds up a specific chemical reaction in a living thing by lowering its activation energy, without being used up itself. One enzyme molecule can be reused thousands of times per second. What an enzyme actually is An enzyme is a large molecule — usually a globular protein , a chain of amino acids folded into a precise three-dimensional blob. Somewhere on that blob is a small pocket called the active site , shaped to fit one particular molecule (the substrate ). The substrate binds, the reaction happens, the products leave, and the enzyme is ready to go again: enzyme + substrate ...

Bond Breaking vs Bond Forming: Energy In, Energy Out

Somewhere between biology class ("ATP releases energy when its bond breaks!") and chemistry class ("breaking bonds requires energy!") most students end up quietly confused. One of those statements is chemically wrong — and once you see which, reaction energetics clicks into place. The short answer: breaking a chemical bond always absorbs energy , and forming a bond always releases energy . A reaction's overall energy change depends on the balance: if the new bonds release more energy than the old ones cost to break, the reaction is exothermic. Quick comparison at a glance Feature Bond breaking Bond forming Energy flow Absorbed (endothermic step) Released (exothermic step) Sign convention Positive contribution to ΔH Negative contribution to ΔH What's happening Pulling bonded atoms apart against their attraction Atoms falling into a lower-energy, more stable arrangement Analogy Stretching a spring until it snaps free A ball settl...

What Is Gibbs Free Energy? Spontaneity Made Simple

Enthalpy votes for releasing heat. Entropy votes for spreading out. When the two disagree — and they constantly do — chemistry needs a referee. That referee has a name, an equation, and one beautifully simple rule. The short answer: Gibbs free energy change (ΔG) combines enthalpy, entropy, and temperature into one number: ΔG = ΔH − TΔS . If ΔG is negative, the process is spontaneous (it can happen on its own); if positive, it isn't; if zero, the system sits at equilibrium. What "free energy" actually means The "free" in free energy doesn't mean it costs nothing — it means available . ΔG measures how much of a reaction's energy change is available to do useful work, after entropy has taken its share. A reaction with ΔG = −100 kJ/mol could, in principle, deliver up to 100 kJ of work per mole — driving a battery, contracting a muscle, powering a cell. And spontaneous is a technical word, not a speed claim. It means "thermodynamically allowed to ...