Skip to main content

Search

"Antibiotic Resistance in Louisiana"

fdabramo

I situate my research at the crossroads of history, philosophy, sociology and anthropology of science. In the past, I have focused on epigenetics, environmental research, empirical bioethics and environmental justice, within and outside the academia, as you can read here, or here. Now I am focusing on antibiotic resistance, and I use it as a lens to interpret the contradictions of the last century derived by industrial production, environmental degradation and biomedical cultures.

What interests me is the (at that time) new epistemic discourse that since the Forties has been produced to explain morphological changes of organisms produce when they experience new environmental conditions or perturbations. Through an important experiment at the base of the so-called concept of genetic assimilation, Conrad H. Waddington showed that a thermic shock can produce changes in wings’ veins of fruit flies, changes that can eventually be inherited across generations, without the environmental trigger that caused them.

This focus on production and (genetic) storage of biological differences elicited by the environment is nowadays coupled with the knowledge produced through microbiome research that explains the phenotypic patterns that recur across generations.

In a thought-provoking twist, with microbiome research, the focus shifts from production and inheritance of biological differences to production and inheritance of biological similarities. Microbiome research shows that some phenotypic patterns are allowed by ecological communities of microorganisms composing all animals. Bacteria allow the development and functioning of our bodies within an epistemic framework that is now key to understand biology. The network of vessels composing mammals’ stomach is formed through cellular differentiation and expression of genes coordinated by bacteria. The same is true for our immune system that is coordinated by gut bacteria. Food, which is an important aspect of our lives also impacts on this microecology and mediates between our biological functions and functioning of means of production whose parts dedicated to food production have immense importance for our biology and our internal and external ecologies. Antibiotic resistance is one of the crossroads where culture, biology, history and the Anthropocene meet. Indeed, Antibiotic resistance shows that means of production of our societies have an even more widespread, deep and allegedly unexpected impact on the biology of animals and plants. The microorganism can indeed adapt to resist the selective toxicity of antibiotics. Moreover, bacteria can transfer their genetic code horizontally, by touch, so that we can acquire antibiotic resistance by eating food that functions as a vector, by hosting lice on our heads and many other contacts. Bacteria that are resistant to antibiotics that have been used as growth factors in animal husbandry and to prevent diseases in livestock and aquaculture, spread in natural ecosystems and can be found in wild species. Rivers and estuarine waters are places hosting antibiotic resistance.

Searching on PubMed (the search engine for biomedical literature) titles of articles containing the terms ‘antimicrobial’ and ‘Louisiana’ I retrieved just one twelve-years-old article. No results with terms such as 'Mississippi' or 'New Orleans'. The authors collected and analysed Oysters from both waters of Louisiana Gulf and in restaurants and food retailers in Baton Rouge. In most of the samples gathered, scientists recognised the presence of bacteria (Vibrio parahaemolyticus and Vibrio vulnificus) resistant to specific antimicrobials. Food production is indeed the first factor in terms of the quantity of antibiotics used. This use and related antibiotic resistance impact all the living beings present in a specific area, and can easily travel around the globe through many channels. As Littman & Viens have highlighted, a sustainable future is a future without antibiotics as “there may be no truly sustainable way of using antibiotics in the long-run, as microorganisms have shown to be almost infinitely adaptable since the first introduction of antibiotics” (Littman & Viens 2015). But in the meanwhile, we need to use them and antibiotic resistance is a phenomenon that can be better studied through environmental research, by analysing wild species and emissions nearby livestock, for instance.

The study that I retrieved focuses on Oysters. But what about antibiotic resistance conveyed through food that is consumed by the most?

What about exposures of communities that are living in highly polluted areas?

And what is the additive value on antibiotic resistance for individuals who experience the presence of industrial pollutants and that live in areas where cancer epidemics are registered?

In this respect, there is a strategy to cope with the issue of antibiotic resistance promoted by the Center for Disease Control and Prevention. The document doesn’t mention any action to monitor and regulate the production and usage of antibiotics in livestock. Nevertheless, the CDC wants to scrutinise, through genome sequencing, “Listeria, Salmonella, Campylobacter, and E. coli and uploads sequence data into PulseNet for nationwide monitoring of outbreaks and trends.” Moreover, the document reports that “In Fiscal Year 2019, Louisiana will begin simultaneously monitoring these isolates for resistance genes. When outbreaks are detected, local CDC-supported epidemiologists investigate the cases to stop spread.”

The questions that I would like to ask (to local ppl, activists, researchers, practitioners..) are:

What could be the epidemiologic characteristics (socioeconomic status, gender, residence..) of the populations more vulnerable to antibiotic resistance?

What is the additive role of antibiotic resistance for people living in highly polluted areas?

What is the impact of antibiotic resistance for people and patients living in areas where cancer incidence is high?

 

And on the long run I am interested in imagining possible strategies to not only living with the problem but also to tackle the problem itself, which means to develop strategies to answer the questions:

Why antibiotic resistance, which is known since a century, it’s a problem on the rise?

What is the role and interest of capitalism, in terms of profit-making of corporations, knowledge production and environmental degradation, in not being able to resolve antibiotic resistance?

What can be strategies of local communities to tackle the problem and to promote environmental justice in terms of alliances with ecologists, doctors, epidemiologists and other activists?

1619 Project

ramah

This may not be the right place to post/share this, and I am happy to delete or move it! But I wanted to make a plug for the 1619 Project, and this post in particular, as helpfully complementing some of the other readings (such as McKittrick and Moore et al) on America's plantation history.

https://www.nytimes.com/interactive/2019/08/14/magazine/slavery-capital…

Hazardous waste work, race, and making disaster "professions"

ramah
I began my research for these field notes by thinking about what kind of labor becomes available in the context of disaster relief/climate change? In my teaching this week, I have been talking about Cyclone Idai and mold as an example of one of how disasters unfold over different temporalities, as in Kim’s work, and via ‘aftershocks’ (Bonilla and Lebron 2019). Thinking about mold got me googling respiratory infections/respiratory health in New Orleans, which lead me to various sites that offer hazardous waste worker training programs (including under the auspices of environmental justice/community development work - e.g. http://www.dscej.org/our-work). This seems one example, among others, of how exposure to environmental harm is transformed into new sites of professionalization. This called to mind discussions of risky labor in the context of disaster, such as in Fortun 2001 or Petryna 2002, and to the centrality of respiration to thinking about anthropocenic processes (Kenner 2019). It highlighted how that transformation of geographical exposure into professional opportunity is then refracted via race and class; while some become hazardous waste clean up experts, others become climate change experts and professionals, who deploy expertise in the wake of other storms. Other accounts (https://blog.nationalgeographic.org/2018/03/06/meet-the-refugees-fighting-for-the-future-of-new-orleans/) highlighted specific communities, such as refugee communities, as key sites of resistance to energy infrastructures including a new gas plant, which is being constructed in a FEMA-designated high-risk flood zone. This short stint of googling also lead me to a number of studies of respiratory health, many using spirometric readings to calculate the impact of exposure (for instance to remediation workers involved in cleaning after Hurricane Katrina) (eg. Rando et al 2012). Having recently read Lundy Braun’s book about race and spirometry (2014), these accounts highlighted for me how racialization is built into these processes in multiple ways: not only does race (along with class, professional background, geographical situation, etc) shape who is exposed and in what ways, it also shapes the how health and harm are measured and made visible in this context.Reference:Rando, Roy, John Lefante, Laurie Freyder, & Robert Jones. 2012. Journal of Environmental and Public Health. https://www.hindawi.com/journals/jeph/2012/462478/