The pathogen detectives: sourcing the post-earthquake cholera outbreak in Haiti

Natural disasters such as earthquakes can have far-reaching effects beyond the damage caused on the day they occur. The 2010 earthquake in Haiti damaged the already limited sanitation systems leading to areas without adequate toilet and washing facilities; perfect for the spread of infection diseases.

Join Our Community of Science Lovers!

This article was published in Scientific American’s former blog network and reflects the views of the author, not necessarily those of Scientific American


Natural disasters such as earthquakes can have far-reaching effects beyond the damage caused on the day they occur. The 2010 earthquake in Haiti damaged the already limited sanitation systems leading to areas without adequate toilet and washing facilities; perfect for the spread of infection diseases. Sure enough 9 months following the quake there was an outbreak of cholera which quickly spread across the whole country.

Cholera exists in the environment in a non-pathogenic form, which becomes dangerous when it picks up the genes for the cholera toxin. These genes are found within bacteriophages (viruses that infect bacteria) and these bacteriophages can spread the toxin genes through a cholera population, mobilising them to their pathogenic forms. Since 1817 there have been 7 major cholera pandemics, each caused by a different subgroup of the Cholera toxin. However none of these pandemics had ever before reached Haiti.

There were two possibilities for the source of the outbreak in Haiti. One was that local non-pathogenic cholera had picked up the toxicity from bacteriophages. The other was that it had come from external sources, namely aid workers and United Nations troops. The first reported case of cholera was in the town of Mirebalais, which is directly downriver from a United Nations camp of troops from Nepal.


On supporting science journalism

If you're enjoying this article, consider supporting our award-winning journalism by subscribing. By purchasing a subscription you are helping to ensure the future of impactful stories about the discoveries and ideas shaping our world today.


Various different types of evidence were put together to work out the source of the infection. News reporters found improper sewerage drainage at the UN camp was leading to waste ending up in the river. There was an cholera outbreak in Nepal shortly before the troops were deployed and as none of them showed cholera symptoms during the pre-deployment medical, no follow-up tests for the disease were done (cholera can be carried asymptomatically). The spread of the disease also followed the waterway, along rivers downstream of the camp.

The genetic big-guns of whole genome sequencing were used to determine exactly what strain of cholera was causing the epidemic. The strains causing the disease in Haiti were shown to be identical clones, suggesting a single infectious source. Comparing DNA at specific genetic islands showed the Haiti strain was in the same subgroup as strains found in Eastern Asia, but not in the Americas. The Haiti bacteria were shown to be in the same subgroup as bacteria from Nepal and Bangladesh and most closely related to the Nepalese bacteria.

It took about three years of research before it was finally an accepted consensus: the outbreak had been caused by UN troops stationed in Haiti and was not a local strain gone rogue. Whole gene sequencing proved a vital tool in solving the mystery, and in the reference the authors point out at had this been used as a first response, rather than only being pulled out in the later stages of the investigation, it could have been solved a lot quicker. Another limiting factor was that there is no single public database of the genome sequences of recurring pathogens from different geographical locations. The development of such a database, along with cheaper and quicker whole genome sequencing, would make it far easier in future to trace the source of epidemics as they arose.

---

Reference 1: Orata FD, Keim PS, Boucher Y (2014) The 2010 Cholera Outbreak in Haiti: How Science Solved a Controversy. PLoS Pathog 10(4): e1003967. doi:10.1371/journal.ppat.1003967

Credit for image 2: Dartmouth Electron Microscope Facility.

About S.E. Gould

A biochemist with a love of microbiology, the Lab Rat enjoys exploring, reading about and writing about bacteria. Having finally managed to tear herself away from university, she now works for a small company in Cambridge where she turns data into manageable words and awesome graphs.

More by S.E. Gould

Subscribe to Support Independent Journalism

Great science journalism requires human expertise, time, effort and creativity. And it costs money. That’s why I and the journalists here at Scientific American hope you’ll join our community.

When you subscribe, you are supporting staff and freelance journalists who are passionate about telling science stories that are true, important and compelling. Our editors and reporters are often experts in their fields, which means they understand the nuances of big discoveries and can untangle the breakthroughs from the hype. With a subscription, you are also supporting rigorous fact-checking to ensure the words we publish are precise and accurate. And you’re supporting original illustrations, graphics and photos that bring you closer to an advanced laboratory, an ice sheet in Antarctica or a space mission in orbit. You’re helping us craft other types of high-quality journalism as well: Our newsletters are carefully written, edited and curated by staffers you have or will come to know and love. Our Science Quickly podcast is based on original reporting, collaboration with editors and scientists and exacting production.

Subscriptions keep this engine running so we can continue to deliver thoughtful, rigorous and independent science journalism to you. In an era of viral misinformation, this work is crucial. If you value what we do, I hope you’ll consider joining us as a subscriber

Thank you,

Jeanna Bryner, Editor in Chief, Scientific American

Subscribe