In deep-sea hydrothermal vent ecosystems, chemosynthetic bacteria form the foundation of the food web by utilizing hydrogen sulfide emitted from vents to synthesize organic compounds. Higher organisms, such as giant tubeworms (Riftia pachyptila), rely entirely on symbiotic bacteria within their specialized organs for nutrition, as mature tubeworms lack a functional digestive tract. Marine biologists recently observed that during periods of volcanic quiescence, when hydrogen sulfide emissions drop dramatically, populations of Riftia pachyptila experience rapid physiological decline and high mortality within weeks. However, neighboring populations of another vent species, the bathymodiolin mussel (Bathymodiolus thermophilus), sustain stable population densities for several months under identical low-sulfide conditions.
Researchers hypothesized that B. thermophilus survives prolonged sulfide deprivation primarily because of its dual endosymbiotic capacity: it harbors both thiotrophic (sulfide-oxidizing) bacteria and methanotrophic (methane-oxidizing) bacteria. The researchers concluded that the presence of methanotrophic endosymbionts allows B. thermophilus to switch to methane as a primary energy source when sulfide availability diminishes, thereby granting the species a distinct competitive survival advantage during volcanic lulls.
Which of the following is an unstated assumption upon which the researchers' conclusion depends?
- Methane emissions at hydrothermal vent sites do not drop to levels insufficient to support methanotrophic chemosynthesis during periods of volcanic quiescence.Cevap
- BMethanotrophic bacteria generate significantly more cellular energy per unit of substrate oxidized than do thiotrophic bacteria under typical vent conditions.
- CHydrogen sulfide emissions regularly resume normal baseline levels before the metabolic energy reserves of B. thermophilus are completely exhausted.
- DBathymodiolin mussels acquire their methanotrophic endosymbionts directly from environmental seawater rather than through maternal inheritance.
- EThe total basal metabolic demand of B. thermophilus increases substantially during periods of low volcanic activity.