| Literature DB >> 29874826 |
Rute Moreira1, David M Pereira2, Patrícia Valentão3, Paula B Andrade4.
Abstract
Entities:
Keywords: chemistry; food safety; pharmacological properties; pyrrolizidine alkaloids; toxicity
Mesh:
Substances:
Year: 2018 PMID: 29874826 PMCID: PMC6032134 DOI: 10.3390/ijms19061668
Source DB: PubMed Journal: Int J Mol Sci ISSN: 1422-0067 Impact factor: 5.923
Figure 1Structure of a PA and its different forms. R1 and R2 correspond to different necic acids.
Figure 2Groups of PA, according to the necine base.
Figure 3Chemical structures of necic acids.
Figure 4Chemical structure of intermedine, an ester of monocarboxylic acid.
Figure 5Chemical structure of echimidine, a diester of monocarboxylic acid.
Figure 6Chemical structure of tricodesmine, senecionine (R1 = H)/retrorsine (R1 = OH) and seneciphylline (R2 = H)/riddeline (R2 = OH), macrocylic diesters.
Figure 7Biosynthesis of necines (A) and of senecic acid (B). Adapted from [1,16,20,24].
Figure 8Metabolism of PA.
Medicinal species containing PA [17,20].
| Family | Plant | Reference |
|---|---|---|
| Apiaceae | [ | |
| Apocynaceae | [ | |
| Asteraceae | [ | |
| Boraginaceae | [ | |
| Fabaceae | / | |
| Lamiaceae | [ | |
| Orchidaceae |
| / |
| Urticaceae | [ |
Plants containing PA used in the production of honey in several countries.
| Country | Plant | Reference |
|---|---|---|
| Argentine | [ | |
| Australia | [ | |
| Brazil | [ | |
| Bulgaria |
| [ |
| China | [ | |
| Ethiopia | [ | |
| Germany | [ | |
| Ghana | [ | |
| India | [ | |
| Italy | [ | |
| New Zealand | [ | |
| Portugal | [ | |
| South Africa | [ | |
| Spain | [ | |
| Switzerland | [ | |
| Thailand |
| [ |
| Turkey | [ | |
| United Kingdom | [ | |
| United States | [ | |
| Uruguay |
| [ |