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Q.Appearance of antibiotic-resistant bacteria is an example of evolution due to : (A) Adaptive radiation (B) Divergent evolution (C) Artificial selection (D) Anthropogenic action

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Antibiotic-resistant bacteria evolve through anthropogenic action — human use of antibiotics creates the selective pressure that favours resistant strains, a direct example of evolution driven by human activity.

Darwin's theory of natural selection rests on a simple but powerful idea: organisms with traits better suited to their environment survive and reproduce more successfully, passing those advantageous traits to the next generation. Over time, populations change. The environment acts as the selective agent, and the result is evolution.

Now consider what happens when we introduce antibiotics into bacterial populations. Before antibiotics, a bacterial colony contains natural genetic variation — most individuals are susceptible to the drug, but a tiny fraction carry random mutations that confer resistance. These resistant bacteria have no particular advantage in the absence of antibiotics; they're just different.

The moment we administer an antibiotic, the landscape shifts entirely. The drug kills or inhibits the susceptible bacteria, but the resistant ones survive. Suddenly, resistance is no longer a neutral quirk — it's a life-or-death advantage. The resistant bacteria reproduce freely in the now-emptied niche, and within generations the population is dominated by resistant strains. The antibiotic didn't create the resistance; it simply selected for bacteria that already possessed it.

This is evolution in fast-forward, and the selective pressure is unmistakably human in origin. We manufacture the antibiotics, we prescribe them, we use them in agriculture, and we often misuse them by stopping treatment early or deploying them unnecessarily. Each use is an evolutionary experiment, and bacteria — with their rapid generation times — respond with breathtaking speed.

Let's see why the other options don't fit:

  • Adaptive radiation describes the rapid diversification of a single ancestral species into multiple forms, each adapted to different ecological niches — think Darwin's finches spreading across the Galápagos. Antibiotic resistance doesn't involve branching into diverse new species; it's a single trait spreading through existing populations.

  • Divergent evolution occurs when related species accumulate differences over time as they adapt to different environments, eventually becoming distinct. Again, we're not watching bacterial species diverge into separate lineages here; we're watching one trait sweep through a population. …

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