Mapping underutilized genomes

It seems you can hardly open a newspaper these days — or open a news website — without reading that someone somewhere has mapped yet another genome, whether human, Neanderthal, sheep, mouse or bee. It hasn’t received any press coverage at all, but the taro (Colocasia esculenta) genome has now been added to the list. CIRAD scientists working in Vanuatu, in the South Pacific, and others just announced this at the recent meeting of the International Society for Tropical Root Crops held in Kerala, India.

One thing to note is that these are not all really genome mapping projects. Despite the many headlines to that effect, scientists are not mapping the Neanderthal genome. What they’re doing is sequencing it — or a small bit of it. There is a difference.

Sequencing means determining the (correct!) order of all the DNA bases — the letters of the genetic code — of an organism. Besides some very fancy hardware and software, you need the DNA of just one individual to do this. Mapping is both rather less and rather more.

Less, because it only aims to determine the relative location of some major landmarks of the genome. That is, not the order of all the letters in the book of life, but rather the relative positions of the pages where some choice quotations can be found.

More, because some of those genomic landmarks may be close to genes associated with predisposition to a disease or some other interesting trait. To find that out you need DNA from whole families, or populations, rather than a single individual — in the case of taro, the family was all the progeny from a couple of crosses between local ni-Vanuatu varieties. You trace the inheritance of the trait you’re interested in together with that of specific “markers” (any observable variation in the DNA sequence), and, hey presto, if you’re lucky you have a much more readily documented proxy for the trait.

With the new genome map, we now have genetic proxies for things like the yield and dimensions of the underground corm of taro. This edible aroid is an important staple in Oceania and parts of South and South East Asia, Africa and the Caribbean, but there are few breeding programmes around the world, which is why it often ends up on lists of so-called “neglected and underutilized species.” This map should make it easier to screen the hundreds of seeds that can result from crossing two varieties and select only the best individuals for further testing (this is called marker-assisted selection). It should therefore stimulate people to set up taro improvement programmes.

These are much needed. Mainly vegetatively propagated by farmers, taro is genetically fairly uniform in many places, making it susceptible to pests and diseases. It was almost wiped out in the South Pacific country of Samoa in the mid-1990s by taro leaf blight, a fungal disease. It has recovered at least in part because a regional project (called TaroGen) was set up by Pacific countries with support from Australia to breed — in collaboration with farmers — and disseminate resistant varieties.

Biotechnology means GMOs to many people, but this is a case where biotechnology is facilitating conventional breeding — nothing to do with genetic engineering. It may not have made the news like other mapping projects, but the new genome map means taro breeding should prove a little bit easier in the future.

Syrian agricultural stats

You may remember a post some time back on an atlas of agriculture in Bhutan. Now here’s an on-line database of governorate-level agricultural statistics for Syria. Maybe not as nice as an atlas, but still pretty useful for planning agricultural biodiversity conservation. Especially as there is time-series data going back to 1985, which could be used to identify areas of genetic erosion through the (admittedly imperfect) proxy of decreasing total acreage. But when will agricultural statisticians and census-takers start collecting data on numbers of varieties, at least of staple crops?

Ancient plant uses

Two stories on the archaeology of ancient plant use caught my eye today. One reports – unfortunately very briefly – on a 4,000 year old perfume factory from Cyprus, listing some of the plants used. The other describes the discovery of what could be, at 6,500 years old, the earliest evidence of wine-making, or at least the mashing up of grapes.

Visualizing data

Stop press: Google bought Gapminder yesterday. Thanks Patchwork Planet. Still no sign of any good Ag data though.

Google has started hosting Gapminder, a wonderful tool for visualizing development data developed by a Swedish NGO. Here’s an example of what you can do with it. Worth playing around with. But to see a master at work, check this out. There are only a few variables at the moment, but wouldn’t it be great if one day the data in FAOSTAT were to be added? Anyone want to volunteer to do the mash-up?

Wild sheep don’t drift

The moufflon is a wild sheep from Corsica, Sardina and Cyprus. In 1957, a male and a female from Corsica were taken to another island, this one in the southern Indian Ocean, in an attempt to establish a herd for sport hunting. The pair thrived on Haute Island, and the resulting population peaked at about 700 head in the 1970’s, thereafter oscillating between 200 and 600. Ok, so far so weird, but so what? Well it turns out that genetic diversity hasn’t behaved as expected. By rights in such a small, isolated, inbred population it should have decreased markedly as a result of genetic drift. But according to this, it hasn’t. The reason is probably strong natural selection, according to the authors of the study, who compared DNA from the original founding couple to that of the present herd.