BIOL 111 Lecture Notes - Lecture 8: Gibbs Free Energy, Catabolism, Bioluminescence

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16 Jan 2016
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1st law- energy can neither be created nor destroyed, only transformed. 2nd law- in every energy transfer, some energy is always converted to heat, this increases entropy/disorder. Spontaneous reactions- occur w/o external energy input, can be quick or slow, increases entropy of the universe. Metabolism is the totality of an organism"s chemical reactions required to maintain life. Anabolic- building big molecules from small, requires energy, endergonic. Gibbs free energy is energy available for work, Delta g= delta h t delta s. Energy = change in enthalpy (heat)- absolute temperature x change in entropy. In a closed system equilibrium is eventually reached. Cells are open systems and experience a constant flow of materials. Defining feature of life is that metabolism is never at equilibrium. Energy coupling- energy from catabolic reaction is used for anabolic. When phosphate group is displaced, work can occur. Binds noncovalently to motor protein and is hydrolyzed, movement occurs.

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