New toxin structures

Research by The National Oceanic and Atmospheric Administration (NOAA) has uncovered the molecular basis for resistance and accumulation of paralytic shellfish toxins (PSTs) in soft-shell clams. A reports in Nature magazine says the new, collaborative study with grants from NOAAs Ecology and Oceanography of Harmful Algal Blooms (ECOHAB) programme and from the National Institute of Health, has important implications for management and monitoring of human health impacts and coastal shellfisheries, as well as our understanding of harmful algae worldwide.

Entitled, A Molecular Basis for Differential Susceptibility and Accumulation of Paralytic Shellfish Poisoning Toxins in Commercial Bivalves, it says paralytic shellfish poisoning is a persistent problem along the East and West Coasts of the United States and is caused by algae that naturally produce PSTs. Shellfish feed on these toxic algae and can accumulate concentrations of toxins at levels unsafe for human consumption.

“Harmful algal blooms pose a serious threat to human health and are economically challenging to our coastal communities,” said retired Navy Vice Admiral Conrad C. Lautenbacher, Jr., Ph.D., under secretary of commerce for oceans and atmosphere and NOAA administrator.

Paralytic effects

Saxitoxin and other PSTs are potent neurotoxins that block movement of sodium through sodium channels in nerve cell membranes, halting the flow of nerve impulses and thereby causing paralysis. Humans who consume affected shellfish can suffer from the paralytic effects of these toxins. There is currently no antidote for paralytic shellfish poisoning, and all cases require immediate medical attention. This research project began in the late 1990s with the finding that soft-shell clams from an area that is frequently impacted by harmful algal blooms are resistant to the toxic effects of PSTs compared to soft-shell clams from areas that have not experienced harmful algal blooms. “We have known for years that different shellfish species vary in their resistance and accumulation of toxins, but this is the first time that we have found a genetic change that causes toxin resistance within the same species,” said Vera Trainer, a program manager at NOAA’s Northwest Fisheries Science Center and one of the scientists involved in this study. In subsequent research, the scientists discovered that the resistance to PSTs is caused by a mutation in the gene for sodium channels, which makes them more than 1,000 times less sensitive to saxitoxin. This toxin resistance allows the clams to survive and feed during harmful algal blooms and thereby accumulate the high levels of PSTs that cause paralytic shellfish poisoning in humans.

“With this information we may be able to eventually develop genetic markers and selectively breed shellfish stocks that accumulate little or no PST in a given region, reducing paralytic shellfish poisoning incidents and harvest losses, as well as be able to predict the evolution of resistance in areas that have only recently experienced paralytic shellfish poisoning outbreaks,” commented Monica Bricelj, lead author on the study.

Through its ECOHAB program, NOAA conducts and supports state-of-the-art research on harmful algal blooms around the coastal U.S.