Temperature extremes may increase risk of heart failure hospitalisation

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The risk of ending up in hospital with heart failure may increase after short-term exposure to cold snaps, lower ambient temperatures and higher ambient temperatures, but not after heatwaves, according to international scientists. The team looked for links with temperature among  482,000 heart failure hospitalisations in Sweden. Cold spells were defined as two or more days with daily temperatures less than or equal to the lowest 5% of recorded temperatures, while heatwaves were defined as higher than or equal to the top 5% of temperatures. In an accompanying editorial, a Chinese researcher highlights the need to translate these findings into an early-warning system for vulnerable people.

News release

From: American College of Cardiology

Temperature Extremes Can Increase Risk of Heart Failure Hospitalization

Study shows environmental stressors can lead to acute increase in illness severity

Heart failure hospitalization risk increases after short-term exposure to cold spells, lower ambient temperatures and higher ambient temperatures, according to a study published in JACC, the flagship journal of the American College of Cardiology, and simultaneously presented at ESC Congress 2026. The increase in hospitalizations, seen in Sweden, shows how temperature extremes can contribute to sudden worsening of illness and the need for health systems to respond to and prepare for environmental stressors.

“To the best of our knowledge, no previous study has examined theshort-term associations between extreme temperature events (cold spells and heat waves) or continuous non-optimal ambient temperatures and heart failurehospitalizations within a Nordic population,” said Wenli Ni, PhD, lead author of the study and a postdoctoral research fellow at the Center for Climate, Health, and the Global Environment at Harvard T.H. Chan School of Public Health. “This represents a critical knowledge gap, given thathigh-latitude settings such as Sweden are characterized by frequent cold exposure while simultaneously facing an emerging, unacclimatized vulnerability to heat as the global climate warms.

In this study, researchers looked at 482,000 heart failure hospitalizations in the Swedish National Patient Register between 2006-2021. Cold spells were defined as two or more consecutive days with daily temperatures less than or equal to the 5th percentile (October-March) and heat waves were defined as greater than or equal to the 95th percentile (April-September), using municipality-specific temperature distributions.

Cold spells were associated with a higher risk of heart failure hospitalization within two to six days, reaching statistical significance between three and five days. Lower ambient temperature exposure was associated with a higher risk of hospitalization within three to six days, reaching statistical significance between three to five days.

Higher temperature exposure was linked to a higher risk of heart failure over zero to three days. There was no association between heat wave exposure and heart failure hospitalization.

According to the authors, the delayed risk of hospitalization after cold temperatures and immediate risk seen with hot temperatures underscores the need for time-sensitive management, including monitoring following cold alerts and more urgent response strategies during heat.

In an accompanying editorial comment, Tiantian Li, PhD, deputy director of the National Institute of Environmental Health, Chinese Center for Disease Control and Prevention in Beijing, said, “We can no longer practice cardiovascular medicine in a meteorological vacuum.”

“The evidence linking non-optimal temperature to cardiovascular harm is now substantial. The scientific mission can no longer rest on accumulating further epidemiological associations alone; it is time to translate these robust data into an actionable early-warning capability,” Li said.

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conference:
JACC
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Organisation/s: Harvard T.H. Chan School of Public Health, USA
Funder: This study has received funding from the European Union’s Horizon 2020 research and innovation program under grant agreement No 820655 (EXHAUSTION).
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