A biological experiment compares metabolic activities and cellular organization between the filamentous bread mould *Rhizopus stolonifer* grown on a starch-agar substrate and the unicellular yeast *Saccharomyces cerevisiae* cultured in a liquid glucose broth under anaerobic conditions. Which of the following statements correctly accounts for their extracellular digestive mechanisms and cellular structural adaptations?
- *Rhizopus stolonifer* secretes amylase externally via its hyphae to hydrolyze starch into soluble sugars for absorption, while *Saccharomyces cerevisiae* directly absorbs dissolved glucose across its chitinous cell wall to undergo intracellular fermentation.Cevap
- B*Rhizopus stolonifer* engulfs solid starch particles holozoically via phagocytosis into food vacuoles, while *Saccharomyces cerevisiae* utilizes chloroplasts to photosynthesize glucose before fermentation.
- C*Rhizopus stolonifer* possesses a cell wall composed of peptidoglycan that actively transports intact starch polymers, while *Saccharomyces cerevisiae* lacks a cell wall to facilitate endocytosis of glucose.
- D*rhizopus stolonifer* secretes digestive enzymes internally through septate hyphae, whereas *saccharomyces Cerevisiae* absorbs glucose using a cellulose-reinforced cell membrane.
Cevap
*Rhizopus stolonifer* secretes amylase externally via its hyphae to hydrolyze starch into soluble sugars for absorption, while *Saccharomyces cerevisiae* directly absorbs dissolved glucose across its chitinous cell wall to undergo intracellular fermentation.
The statement accurately reflects fungal saprophytism: *Rhizopus stolonifer* releases extracellular enzymes (e.g., amylase) from its coenocytic hyphae to break down complex starch into simple glucose molecules, which are then absorbed across its chitin cell wall. In contrast, *Saccharomyces cerevisiae* directly absorbs available glucose across its chitinous wall to conduct cytosolic glycolysis and alcoholic fermentation in anaerobic conditions.
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Saprophytic Extracellular Digestion and Chitinous Cellular Structure in Fungi
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