Lipid of the Month

Each month we highlight a lipid of scientific interest. The LIPID MAPS® Lipid of the Month Archive lists lipids highlighted from 2015 - present.

August 2026

Lipid of the month alpha-Solanine

Even though neither foodstuff is native to Europe, there’s a map circulating on the internet as a meme that splits the continent into whether the diet is potato or tomato based.The UK, being well north of the divide, is firmly in the potato part and celebrates the humble spud with National Potato Day in the middle of this month. Both plants are related as members of the Solanum genus.

All green parts of the potato plant contain solanine, a steroidal saponin whose structure was determined in the 1950s1. It’s formed from cholesterol, which is variously oxidised and cyclised to make solanidine. To this, sugars are added to form solanine. Glucose, galactose, and rhamnose constitute solanine; whereas chaconine, a related molecule that is also toxic and found in potatoes, replaces the galactose with a second rhamnose.2

It isn’t clear by what mechanism solanine is toxic3, though eating a slightly green crisp (or chip, if you’re American) will not kill you. The amount of solanine in potato tissue varies, with levels increasing if the plant is under stress. Around 6 mg of solanine per kilo of body mass can be fatal if administered pure, but poor absorption in the gut probably means you would need to eat a lot of green potatoes to reach this amount.

Nevertheless, we don’t advise readers to ingest potato foliage. Eat too much and you’ll have had your chips!

References

Lipid of the Month Archive

2026

July 2026

Lipid of the Month

At the time of writing, large parts of the UK and much of Europe are preparing for extreme heat, and the temperature is expected to reach record levels for June. Unusually for Wales, there is not a cloud in the sky! In these conditions, sunburn is a major danger and our skin has to combat UV radiation.

Our skin produces an oil called sebum, which contains a high proportion of squalene, a triterpene which acts as an emollient, but also a natural sunblock. Its six double bonds are susceptible to photooxidation, but this prevents other molecules from being oxidised by UV-A radiation. Skin is unique in having high levels of squalene- in other tissues it is oxidised to the 2,3-epoxide which is then cyclised to form lanosterol, and on to cholesterol. Squalene was first isolated from the liver of the squalidae family of sharks, hence its name, and its chemical structure determined in the 1920s1.

Oxidised squalene functions as a signalling molecule, turning on photo-protective mechanisms in the skin. However, large amounts have been shown to be damaging2.They can cause persistent inflammation, and could contribute to acne3. So if you have to venture out into intense sunshine, do make sure you’re well covered- squalene won’t protect you on its own.

References

  • The unsaponifiable matter from the oils of elasmobranch fish. Part I. A contribution to the study of the constitution of squalene (spinacene)
    J Chem Soc
    1926
    DOI 10.1039/JR9262901630
  • Photo-Oxidation Products of Skin Surface Squalene Mediate Metabolic and Inflammatory Responses to Solar UV in Human Keratinocytes
    PLOS One
    2012
    DOI 10.1371/journal.pone.0044472
  • Squalene Peroxidation and Biophysical Parameters in Acne-Prone Skin: A Pilot "In Vivo" Study
    Pharmaceuticals (Basel)
    2023
    DOI 10.3390/ph16121704


June 2026

Lipid of the Month

“We will not be eating that” stressed a park ranger recently to a group of volunteers, your author among them, whilst pointing at a particular plant. The volunteers were removing invasive Himalayan Balsam from the side of a stream in a Cardiff suburb, but the plant in question was very different. With tall stems and parsley-like leaves, hemlock water-dropwort - Oenanthe crocata - is by some measures the most poisonous plant in Europe.

It contains Oenanthotoxin, a 17-carbon polyacetylene alcohol, with two triple and three double bonds1. Such acetylenic lipids are often found in this family of plants, many of which are poisonous, but, which includes some edible species such as the carrot2. Confusion of hemlock water-dropwort with similar-looking edible species, with fatal consequences was documented nearly 250 years ago3 and it has been used to deliberately kill people for thousands of years.

Oenanthotoxin is a neurotoxin, it binds to the gamma-aminobutyric acid receptor in a neuron membrane and holds the chloride channel in an open conformation, leaving the cell in a permanent excitatory state4. The result is a series of symptoms including seizures, vomiting, muscle spasms and ultimately, death. The muscle spasms cause the face to adopt a rigid smile- the so-called ‘sardonic grin’.

Even in an inner city suburb, there are lipids out there which could kill you!

References

  • Oenanthotoxin and cicutoxin. Isolation and structures
    J Chem Soc
    1953
    DOI 10.1039/JR9530000309
  • Bioactive polyacetylenes in food plants of the Apiaceae family: occurrence, bioactivity and analysis
    J Pharm Biomed Anal
    2006
    DOI 10.1016/j.jpba.2006.01.057
  • An Account of the Poisonous Effects of the Oenanthe Crocata, or Hemlock Dropwort
    Lond Med J
    1784
  • Poisoning due to water hemlock
    Clin Toxicol
    2009
    DOI 10.1080/15563650902904332


May 2026

Lipid of the Month

Around this time of year, ephemeral clouds of mayflies emerge from bodies of water to complete their lifecycle. Usually within a single day they mating, lay eggs and die. It’s ephemeral as the ephemeroptera is the ancient insect order that comprises mayflies. Their appearance as adults is due to an absence of May’s Lipid of the Month.

In insects, Juvenile Hormone III is the most prevalent of a family of acyclic sesquiterpene hormones which function to suppress metamorphosis in insect larvae. It is produced by a gland called the corpus allatum in the head of the insect. Moulting is under control of other lipid hormones such as ecdysone and 20-hydroxyecdysone; juvenile hormone determines the outcome of the moult. In the presence of juvenile hormone, when the larval form of an insect sheds its skin it remains a larva, albeit a bigger one. Without juvenile hormone, genes such as ecdysone inducible factor 93 and broad are expressed which direct transformation into an adult form1.

The structure of juvenile hormone III was first determined in 19732 as a methyl epoxyfarnesate. It has led to the development is synthetic juvenile hormone mimics such as Methoprene, which act as pest control agents by disrupting insect life cycles3. Thankfully however, these are not applied to mayflies which are not in any way a pest. While they could cause drifts of dead insects after they all emerge and mate, they are a sign of a healthy ecosystem in the rivers where they spend much of their larval lives.

References

  • The genetic determination of alternate stages in polyphenic insects
    Evol Dev
    2024
    DOI 10.1111/ede.12485
  • Isolation, Structure, and Absolute Configuration of a New Natural Insect Juvenile Hormone from Manduca sexta
    Proc Natl Acad Sci U S A
    1973
    DOI 10.1073/pnas.70.5.1509
  • Chemosensory and behavioral effects of Methoprene, a commonly used juvenile hormone analog and insect pesticide
    Curr Opin Insect Sci
    2025
    DOI 10.1016/j.cois.2025.101392


April 2026

Lipid of the Month

The main function of carotenoid pigments in plants is to protect from the damaging effects of sunlight and the reactive oxygen species formed during photosynthesis. Given this, it's perhaps surprising that the carrot root, which is underground in the dark, and does not photosynthesise, is full of beta-carotene, the proto-typical carotenoid.

So why is the carrot, which is honoured by International Carrot Day on 4th April, full of pigment it apparently doesn’t need? The answer is humans. Wild carrots are white, the coloured parts only appeared after domestication with the gene expression driving carotenoid production in the roots because they looked more appealing to the eater1.

The chemical structure of beta-carotene was determined by Paul Karrer in 19302, for which he was awarded the 1937 Nobel Prize. It is a 40-carbon molecule, with two identical halves. Beta-carotene is not just essential in photosynthesis, in humans it is split by β-Carotene 15,15′-Oxygenase to form two retinal molecules3. Retinal, is needed in the immune system but is most notably essential as the visual pigment in the eye.

So the next time you see a carrot, remember you can only see it because the carotene it contains goes on to power your vision!

References

  • Biosynthesis of carotenoids in carrot: An underground story comes to light
    Arch Biochem Biophys
    2013
    DOI 10.1016/j.abb.2013.07.009
  • Pflanzenfarbstoffe XXV. Über die Konstitution des Lycopins und Carotins
    Helv Chim Acta
    1930
    DOI 10.1002/hlca.19300130532
  • Identification, Expression, and Substrate Specificity of a Mammalian β-Carotene 15,15′-Dioxygenase
    J Biol Chem
    2001
    DOI 10.1074/jbc.M009030200


April 2026

Lipid of the Month

Researchers from Cardiff University's chemistry department have isolated an extremely unusual lipid molecule from the saliva of Draig goch, a native, but very rare, Welsh reptile. The molecule is a flavonoid dimer. These are not unknown, but the way the two monomers are joined in this case is totally unprecedented.

Prof Dai Fallant, lead author on the work, said “Firapolol is an extremely unusual flavonoid dimer, in which the two units are linked by a boron atom. It is not particularly stable and can decompose to yield trace amounts of diborane”. Diborane is a highly flammable gas which can ignite spontaneously and is usually toxic1. Fallant and his team speculate that this might explain the ancient mythology that D. goch can breathe fire.

Firapolol is believed to be derived from kaempferol, which is abundant in leek (Allium porrum)2 the main food of D.goch. However, the metabolic process by which it produces this molecule, and indeed how it avoids the toxic nature of boron compounds is a subject for further research.

The research is due to be published shortly in Gwerddon and once online, we’ll add the molecule to LMSD.

References



March 2026

Lipid of the Month

It’s nearly 18,000 years ago, Wyoming is in the grip of the last ice age and bison trudge over the snowy ground. Failing to see the edge, one animal, with a chronic respiratory condition, falls into Natural Trap Cave, a sinkhole in the ancient limestone. The 30m fall is likely instantly fatal.

Fast forward to modern times and the bison’s bones are excavated and analysed. DNA from Mycobacterium tuberculosis is discovered in them1 but so also are lipids characteristic of the bacterium2, for example alpha-mycolic acid. These findings show the bison was suffering from TB.

Alpha-mycolic acid forms a family of very long chain fatty acids, typically between 60 and 90 carbons long divided into 2 sidechains and with one or more cyclopropane groups. One of the most abundant found in the bison had 80 carbons. Alpha-mycolic acid is part of a complex array of lipids in the cell wall of M. tuberculosis which makes it resistant to dehydration, many drugs, and allows it to live inside macrophages. The bacterium was discovered by Robert Koch, who announced his finding that it caused TB on 24th March 18823, the reason world TB day occurs on that date.

In spite of many efforts, TB still kills over 1 million people each year. The surface lipids modulate interactions with the host, and so are promising targets for anti-TB drugs4.

References

  • Mycobacterium tuberculosis complex DNA from an extinct bison dated 17,000 years before the present
    Clin Infect Dis
    2001
    DOI 10.1086/321886
  • Mycobacterium tuberculosis complex lipid virulence factors preserved in the 17,000-year-old skeleton of an extinct bison, Bison antiquus
    PLoS One
    2012
    DOI 10.1371/journal.pone.0041923
  • Steps towards the discovery of Mycobacterium tuberculosis by Robert Koch, 1882
    Clin Microbiol Infect
    2014
    DOI 10.1111/1469-0691.12555
  • The lipid language of tuberculosis: Mycobacterium tuberculosis surface molecules in host interaction and drug resistance
    mBio
    2026
    DOI 10.1128/mbio.03959-25


February 2026

Lipid of the Month

In the middle of February comes the beginning of a new year in the Chinese lunar calendar. We enter the year of the horse in the Chinese zodiac.

Horse lipids have been studied for a long time, particularly the steroid hormones. Compounds such as equilin, hippulin1 and estrone sulfate2 were first discovered in horse urine, presumably because it is available in significant quantities. In the days before modern, sensitive equipment, large amounts of samples were needed for any biochemical analysis.

Other lipids are found in the sebum of horses- the oily excretion on the skin. These include a range of long-chain (34-38 carbons) lactones with two double bonds such as 36-methyl-21Z,29Z-heptatriacontadien-37-olide. While a series of similar lactones were characterised in 19843, it seems the function of these molecules remains enigmatic.

Though they are closely related species, horse and zebra sebum lactones differ. Horse lactones have been found to be branched (mostly formed from iso- fatty acids), whereas those from zebra were unbranched4. We understand however that there are easier ways to tell the difference between a horse and a zebra without requiring extensive molecular exploration of their skin secretions!

If you’re celebrating starting the year of the horse this month, Gong hei fat choy- 恭喜发财

References



January 2026

Lipid of the Month

Over the holiday season, it’s likely that many of us have ingested rather more lipids than perhaps we intended. In fact, there’s research showing cholesterol levels spike in January making hypercholesterolemia diagnoses unreliable1. While digesting those holiday lipids, the body will have made use of a further one- cholic acid, which helps solubilise fats in the gut.

Cholic acid, together with chenodeoxycholic acid, are the main bile acids produced in humans, but they can be modified in many ways, not least by gut bacteria2. These bile acids act as detergents to help solubilise dietary fat and aid their absorption into the body. They’re produced from cholesterol by the liver and excreted into the intestinal tract via the gall bladder.

But bile acids don’t just help digest food, they act as signalling molecules, regulating their own synthesis and binding to nuclear hormone receptors, which control gene transcription. They are implicated in a range of diseases3 including metabolic and immune conditions. There is even a suggestion that bile acids could have a role in mental health4.

References



2025
2024
2023
2022
2021
2020
2019
2018
2017
2016
2015