Citrus limon var. pompia Camarda var. nova : A Comprehensive Review of Its Botanical Characteristics, Traditional Uses, Phytochemical Profile, and Potential Health Benefits.

Item request has been placed! ×
Item request cannot be made. ×
loading   Processing Request
  • Additional Information
    • Source:
      Publisher: MDPI Publishing Country of Publication: Switzerland NLM ID: 101521595 Publication Model: Electronic Cited Medium: Internet ISSN: 2072-6643 (Electronic) Linking ISSN: 20726643 NLM ISO Abbreviation: Nutrients Subsets: MEDLINE
    • Publication Information:
      Original Publication: Basel, Switzerland : MDPI Publishing
    • Subject Terms:
    • Abstract:
      Citrus limon var. pompia Camarda var. nova , commonly known as pompia, is a distinctive citrus ecotype native to Sardinia, notable for its unique botanical, phytochemical, and potential health benefits. It holds cultural significance as a traditional food product of Sardinia, recognized by the Italian Ministry of Agricultural Food and Forestry Policies. This comprehensive review examines pompia's traditional uses, taxonomic classification, pomological characteristics, phytochemical profile, and potential health benefits. Pompia phytochemical analyses reveal a rich composition of flavonoids and terpenoids, with notable concentrations of limonene, myrcene, and various oxygenated monoterpenes. Pompia essential oils are primarily extracted from its peel and leaves. Peel essential oils exhibit a high concentration of the monoterpene limonene (82%) and significantly lower quantities of myrcene (1.8%), geranial (1.7%), geraniol (1.5%), and neral (1.4%). In its rind extract, flavanones such as naringin (23.77 µg/mg), neoeriocitrin (46.53 µg/mg), and neohesperidin (44.57 µg/mg) have been found, along with gallic acid (128.3 µg/mg) and quinic acid (219.67 µg/mg). The main compounds detected in the essential oils from pompia leaves are oxygenated monoterpenes (53.5%), with limonene (28.64%), α-terpineol (41.18%), geranial (24.44%), (E)-β-ocimene (10.5%), linalool (0.56%), and neryl acetate (13.56%) being particularly prominent. In pompia juice, the presence of phenolic compounds has been discovered, with a composition more similar to lemon juice than orange juice. The primary flavonoid identified in pompia juice is chrysoeriol-6,8-di-C-glucoside (stellarin-2) (109.2 mg/L), which has not been found in other citrus juices. The compound rhoifolin-4-glucoside (17.5 mg/L) is unique to pompia juice, whereas its aglycone, rhoifolin, is found in lemon juice. Other flavonoids identified in pompia juice include diosmetin 6,8-C-diglucoside (54.5 mg/L) and isorhamnetin 3-O-rutinoside (79.4 mg/L). These findings support the potential of pompia in developing nutraceuticals and natural health products, further confirmed by its compounds' antioxidant, anti-inflammatory and antibacterial properties. Future research should focus on optimizing extraction methods, conducting clinical trials to evaluate efficacy and safety, and exploring sustainable cultivation practices. The potential applications of pompia extracts in food preservation, functional foods, and cosmetic formulations also warrant further investigation. Addressing these areas could significantly enhance pompia's contribution to natural medicine, food science, and biotechnology.
    • References:
      Plants (Basel). 2019 Mar 31;8(4):. (PMID: 30935148)
      Front Nutr. 2022 Jul 18;9:968604. (PMID: 35923210)
      Phytomedicine. 1998 Dec;5(6):469-73. (PMID: 23196031)
      Arch Biochem Biophys. 1998 Jul 15;355(2):206-14. (PMID: 9675029)
      J Evid Based Integr Med. 2021 Jan-Dec;26:2515690X211043741. (PMID: 34657477)
      PLoS One. 2013 Apr 16;8(4):e61484. (PMID: 23613861)
      PLoS One. 2012;7(11):e48817. (PMID: 23144984)
      Curr Neuropharmacol. 2023;21(5):1184-1201. (PMID: 36237161)
      Pharmaceuticals (Basel). 2022 Sep 07;15(9):. (PMID: 36145338)
      Plant Physiol. 1970 Mar;45(3):334-8. (PMID: 16657319)
      Front Biosci (Landmark Ed). 2023 Sep 14;28(9):198. (PMID: 37796708)
      J Agric Food Chem. 2000 Sep;48(9):4156-61. (PMID: 10995330)
      Nat Prod Res. 2023 Aug-Sep;37(16):2681-2687. (PMID: 36200704)
      Food Chem Toxicol. 2010 Jun;48(6):1734-40. (PMID: 20385194)
      J Agric Food Chem. 2005 Mar 23;53(6):2009-14. (PMID: 15769128)
      Phytochem Anal. 2002 Jan-Feb;13(1):8-17. (PMID: 11899609)
      PLoS One. 2016 Apr 18;11(4):e0153643. (PMID: 27088973)
      Biosens Bioelectron. 2015 May 15;67:214-23. (PMID: 25155059)
      J Food Sci. 2017 Feb;82(2):380-385. (PMID: 28071793)
      Biomed Pharmacother. 2023 Jul;163:114866. (PMID: 37182516)
      Commun Agric Appl Biol Sci. 2013;78(2):65-72. (PMID: 25145226)
      Int J Mol Sci. 2020 Jul 14;21(14):. (PMID: 32674299)
      Food Chem. 2015 Apr 15;173:54-60. (PMID: 25465994)
      Food Microbiol. 2020 May;87:103386. (PMID: 31948627)
      Molecules. 2007 Aug 03;12(8):1641-73. (PMID: 17960080)
      Carcinogenesis. 1988 Feb;9(2):331-2. (PMID: 3123086)
      Biomed Pharmacother. 2023 Jul;163:114783. (PMID: 37121149)
      Food Chem. 2016 Feb 1;192:575-85. (PMID: 26304386)
      J Food Sci. 2012 Sep;77(9):T173-80. (PMID: 22897411)
      Chin Med. 2022 Aug 26;17(1):100. (PMID: 36028892)
      J Chromatogr A. 2001 Apr 13;913(1-2):387-95. (PMID: 11355837)
      J Agric Food Chem. 2004 May 19;52(10):3036-41. (PMID: 15137850)
      Curr Atheroscler Rep. 2013 Dec;15(12):368. (PMID: 24091782)
      Food Chem Toxicol. 2015 Jul;81:160-170. (PMID: 25896273)
      Food Chem. 2017 Aug 15;229:425-431. (PMID: 28372195)
      Pharmaceutics. 2021 Mar 03;13(3):. (PMID: 33802570)
      Biosens Bioelectron. 2011 Dec 15;30(1):1-12. (PMID: 21963095)
      Front Cell Dev Biol. 2022 Jul 13;10:894305. (PMID: 35912113)
      Anal Chem. 2010 Jun 15;82(12):5134-40. (PMID: 20503971)
      Medicines (Basel). 2018 Oct 14;5(4):. (PMID: 30322189)
      Molecules. 2022 Feb 27;27(5):. (PMID: 35268681)
      Pain Res Manag. 2018 May 8;2018:7801543. (PMID: 29854039)
      Planta Med. 2018 Mar;84(4):225-233. (PMID: 29161743)
      Antioxidants (Basel). 2021 Feb 02;10(2):. (PMID: 33540918)
      J Ethnopharmacol. 2023 Jan 10;300:115722. (PMID: 36115603)
      Eur J Med Chem. 2022 Apr 5;233:114217. (PMID: 35276425)
      Food Chem Toxicol. 2016 Apr;90:171-80. (PMID: 26911552)
      Food Funct. 2014 Apr;5(4):764-72. (PMID: 24563112)
      J Agric Food Chem. 2004 Jan 28;52(2):324-31. (PMID: 14733516)
      Planta Med. 2000 Aug;66(6):495-505. (PMID: 10985073)
      Pharmaceuticals (Basel). 2020 Aug 28;13(9):. (PMID: 32872140)
      Molecules. 2019 Mar 05;24(5):. (PMID: 30841559)
      Phytochemistry. 2019 Dec;168:112083. (PMID: 31521382)
      Molecules. 2020 Jul 13;25(14):. (PMID: 32668641)
      Fitoterapia. 2012 Apr;83(3):481-9. (PMID: 22223143)
      Anal Chem. 2014 Sep 2;86(17):8727-34. (PMID: 25088601)
      Nanomaterials (Basel). 2020 Feb 07;10(2):. (PMID: 32046201)
      Food Chem. 2011 Jun 15;126(4):1821-35. (PMID: 25213963)
      Antioxidants (Basel). 2023 Jan 31;12(2):. (PMID: 36829900)
      Int J Pharm. 2016 Jun 15;506(1-2):449-57. (PMID: 27084291)
      Front Pharmacol. 2015 Mar 02;6:36. (PMID: 25784877)
      Food Res Int. 2019 Jun;120:620-630. (PMID: 31000280)
    • Contributed Indexing:
      Keywords: Pompia; botanical; phytochemical analysis; traditional uses
    • Accession Number:
      0 (Phytochemicals)
      0 (Oils, Volatile)
      0 (Flavonoids)
      0 (Plant Extracts)
      0 (Terpenes)
    • Publication Date:
      Date Created: 20240829 Date Completed: 20240829 Latest Revision: 20240903
    • Publication Date:
      20240903
    • Accession Number:
      PMC11357429
    • Accession Number:
      10.3390/nu16162619
    • Accession Number:
      39203756