Since it is imbued with antibiotics, resistant bacteria, and their resistance genes, hospital waste has transformed post-medical “tail water” into a global epicenter of connected ecological and health emergencies. By considering a “gap identification, risk tracking, and barrier rebuilding” framework and integrating 10 years of worldwide evidence, we first reveal how four mutually reinforcing deficits: absent primary treatment units, static design, aging infrastructure, and a hollowed-out workforce—perpetually overload small-scale facilities, unleashing high loads of antibiotics and antibiotics resistance genes (ARGs). We then follow ng/L residues along the “outfall—sediment—zooplankton—fish” continuum, showing how horizontal gene transfer (HGT) and mutational evolution processes restructure microbial communities, suppress algal photosynthesis and fish reproduction, and ultimately amplify threats to biodiversity and human health throughout the food web. To address the paradox that treatment does not equate to safety, we advance a multibarrier portfolio: (i) implement proactive retrofitting of equipment to confer inherent operational flexibility; (ii) process-stage adsorption-biodegradation hybrids that curtail selective pressure; and (iii) a harmonized, end-line monitoring network coupled with bioindicators to pinpoint ARG hotspots. Complementary measures, including regional pooled maintenance, microcredential training, green finance incentives, and a global data-sharing platform, shift the governance paradigm from end-of-pipe removal to life-cycle risk management, offering a replicable, technoinstitutional roadmap to overcome the pollution-resistance feedback loop.
Zhu et al. (2026) studied this question.