Leaf tissue metabolomics fingerprinting of Citronella gongonha Mart. by 1H HR-MAS NMR

被引:0
|
作者
Sher Ali
Gul Badshah
Umar Ali
Muhammad Siddique Afridi
Anwar Shamim
Ajmir Khan
Frederico Luiz Felipe Soares
Leociley Rocha Alencar Menezes
Vanessa Theodoro Rezende
Andersson Barison
Carlos Augusto Fernandes de Oliveira
Fernando Gustavo Tonin
机构
[1] Federal University of Paraná (UFPR),Department of Chemistry, NMR Center
[2] University of São Paulo (USP),Faculty of Animal Science and Food Engineering (FZEA), Department of Food Engineering
[3] Federal University of Paraná (UFPR),Laboratory of Polymers and Catalysis (LaPoCa), Department of Chemistry
[4] University of Malakand (UoM),Department of Physics
[5] Federal University of Lavras (UFLA),Department of Plant Pathology
[6] University of São Paulo-São Carlos Institute of Chemistry (IQSC-USP),Group of Medicinal and Biological Chemistry
[7] Michigan State University (MSU),School of Packaging
[8] Federal University of Paraná (UFPR),Data Science in Chemistry Laboratory, Department of Chemistry
[9] University of São Paulo (USP),Faculty of Veterinary and Animal Science (FMVZ), Department of Animal Science
[10] University of São Paulo (USP),Faculty of Animal Science and Food Engineering (FZEA), Department of Biosystems Engineering
来源
关键词
D O I
暂无
中图分类号
学科分类号
摘要
This research characterizes key metabolites in the leaf from Citronella gongonha Martius (Mart.) Howard (Cardiopteridaceae). All metabolites were assessed in intact leaf tissue by proton (1H) high-resolution magic angle spinning (HR-MAS) nuclear magnetic resonance (NMR) spectroscopy integrated with the principal component analysis (PCA) to depict molecular association with the seasonal change. The major ‘known unknown’ metabolites detected in 1H HR-MAS NMR were derivatives of flavonoid, polyphenolic and monoterpenoid compounds such as kaempferol-3-O-dihexoside, caffeoyl glucoside (2), 3-O-caffeoylquinic acid (3), 5-O-caffeoylquinic acid (4), kingiside (5), 8-epi-kingisidic acid (6), (7α)-7-O-methylmorroniside (7), (7β)-7-O-methylmorroniside (8) and alpigenoside (9) together with the universally occurring sucrose (10), α-glucoses (11, 12), alanine (13), and fatty (linolenic) acid (14). Several of the major metabolites (1, 2–9) were additionally confirmed by liquid chromatography tandem mass spectrometry (LC–MS/MS). In regard with the PCA results, metabolites 1, 2–9 and 14 were influenced by seasonal variation and/or from further (a) biotic environmental conditions. The findings in this work indicate that C. gongonha Mart. is an effective medicinal plant by preserving particularly compounds 2, 3–9 in abundant amounts. Because of close susceptibility with seasonal shift and ecological trends, further longitudinal studies are needed to realize the physiology and mechanism involved in the production of these and new metabolites in this plant under controlled conditions. Also, future studies are recommended to classify different epimers, especially of the phenolics and monoterpenoids in the given plant.
引用
下载
收藏
相关论文
共 50 条
  • [21] Resolution of creatine and phosphocreatine 1H signals in isolated human skeletal muscle using HR-MAS 1H NMR
    Chen, Jin-Hong
    Wu, Yuhsin V.
    DeCarolis, Penelope
    O'Connor, Rachael
    Somberg, C. Joy
    Singer, Samuel
    MAGNETIC RESONANCE IN MEDICINE, 2008, 59 (06) : 1221 - 1224
  • [22] Metabolomic Profiling of Wildtype and Transgenic Giardia lamblia Strains by 1H HR-MAS NMR Spectroscopy
    Mueller, Joachim
    Vermathen, Martina
    Leitsch, David
    Vermathen, Peter
    Mueller, Norbert
    METABOLITES, 2020, 10 (02)
  • [23] 1H HR-MAS NMR and isotopic investigation of bread and flour samples produced in southern Italy
    Brescia, MA
    Sgaramella, A
    Ghelli, S
    Sacco, A
    JOURNAL OF THE SCIENCE OF FOOD AND AGRICULTURE, 2003, 83 (14) : 1463 - 1468
  • [24] Response of Degarelix treatment in human prostate cancer monitored by HR-MAS 1H NMR spectroscopy
    Madhu, Basetti
    Shaw, Greg L.
    Warren, Anne Y.
    Neal, David E.
    Griffiths, John R.
    METABOLOMICS, 2016, 12 (07)
  • [25] Response of Degarelix treatment in human prostate cancer monitored by HR-MAS 1H NMR spectroscopy
    Basetti Madhu
    Greg L. Shaw
    Anne Y. Warren
    David E. Neal
    John R. Griffiths
    Metabolomics, 2016, 12
  • [26] Evaluation of the ERETIC Method as an Improved Quantitative Reference for 1H HR-MAS Spectroscopy of Prostate Tissue
    Albers, Mark J.
    Butler, Thomas N.
    Rahwa, Iman
    Bao, Nguyen
    Keshari, Kayvan R.
    Swanson, Mark G.
    Kurhanewicz, John
    MAGNETIC RESONANCE IN MEDICINE, 2009, 61 (03) : 525 - 532
  • [27] The Relationship between Histological Composition and Metabolic Profile in Breast Tumors and Peritumoral Tissue Determined with 1H HR-MAS NMR Spectroscopy
    Skorupa, Agnieszka
    Ciszek, Mateusz
    Turska-d'Amico, Maria
    Stobiecka, Ewa
    Chmielik, Ewa
    Szumniak, Ryszard
    d'Amico, Andrea
    Boguszewicz, Lukasz
    Sokol, Maria
    CANCERS, 2023, 15 (04)
  • [28] 1H HR-MAS NMR-Based Metabolomic Fingerprinting to Distinguish Morphological Similarities and Metabolic Profiles of Maytenus ilicifolia, a Brazilian Medicinal Plant
    Ali, Sher
    Rech, Katlin S.
    Badshah, Gul
    Soares, Frederico L. F.
    Barison, Andersson
    JOURNAL OF NATURAL PRODUCTS, 2021, 84 (06): : 1707 - 1714
  • [29] IMPACT OF DIFFERENT CULTIVATION METHODS ON THE METABOLIC PROFILE OF APPLES STUDIED BY 1H HR-MAS NMR SPECTROSCOPY
    Vermathen, M.
    Marzorati, M.
    Baumgartner, D.
    Good, C.
    Vermathen, P.
    MAGNETIC RESONANCE IN FOOD SCIENCE: FOOD FOR THOUGHT, 2013, 343 : 193 - 200
  • [30] Quantitative analysis of prostate metabolites using 1H HR-MAS spectroscopy
    Swanson, MG
    Zektzer, AS
    Tabatabai, ZL
    Simko, J
    Jarso, S
    Keshari, KR
    Schmitt, L
    Carroll, PR
    Shinohara, K
    Vigneron, DB
    Kurhanewicz, J
    MAGNETIC RESONANCE IN MEDICINE, 2006, 55 (06) : 1257 - 1264