Course review

B2.2 Organelles and compartmentalization

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Learning objective

B2.2.1—Organelles as discrete subunits

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• Organelles are discrete cell subunits adapted for specific functions • Nuclei, chloroplasts, mitochondria, vesicles, ribosomes, and plasma membrane are organelles • Cell wall, cytoskeleton, and cytoplasm are not usually considered organelles

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B2.2.2—Nucleus-cytoplasm separation

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• The nuclear envelope protects DNA and separates transcription from translation • Introns can be removed from pre-mRNA by RNA splicing before translation • Nuclear pores regulate mRNA export and protein import using selective transport

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B2.2.3—Advantages of compartmentalization

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• Compartmentalization concentrates enzymes, substrates, and suitable pH for specific reactions • It separates incompatible biochemical processes so they can be controlled • Lysosomes and phagolysosomes contain acidic hydrolytic digestion away from cytoplasm

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B2.2.4 (HL)—Mitochondrion adaptations

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• The outer membrane contains transport proteins for pyruvate entry • Folded cristae increase surface area for electron transport chains and ATP synthase • The intermembrane space stores protons; the matrix contains Krebs cycle enzymes

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B2.2.5 (HL)—Chloroplast adaptations

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• Thylakoid membranes in grana hold photosystems, electron transport chains, and ATP synthase • Small thylakoid spaces allow rapid proton accumulation • The stroma contains enzymes and suitable pH for the Calvin cycle

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B2.2.6 (HL)—Nuclear membrane benefits

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• The nuclear envelope is a double membrane continuous with the ER • Numerous nuclear pores allow rapid regulated exchange between nucleus and cytoplasm • The nuclear lamina supports the nucleus, and the envelope breaks into vesicles during division

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B2.2.7 (HL)—Free ribosomes vs. rough ER

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• Free ribosomes synthesize proteins retained and used in the cytoplasm • Polysomes allow many ribosomes to translate the same mRNA at once • RER-bound ribosomes synthesize proteins for secretion, membranes, or lysosomes

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B2.2.8 (HL)—Golgi apparatus

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• The Golgi is a stack of flattened cisternae receiving vesicles from the RER • Different cisternae modify proteins by glycosylation, sulfation, or phosphorylation • Vesicles from the Golgi deliver proteins to lysosomes, membranes, or secretion pathways

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B2.2.9 (HL)—Vesicles in cells

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• Vesicles move materials between organelles, plasma membrane, and extracellular space • Receptor-mediated endocytosis can form clathrin-coated pits and vesicles • Vesicle fusion is essential for secretion and neurotransmitter release

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