Approaches to Decrease Hyperglycemia by Targeting Impaired Hepatic Glucose Homeostasis Using Medicinal Plants.

Gerardo Mata-Torres, Adolfo Andrade-Cetto, Fernanda Espinoza-Hernández
Author Information
  1. Gerardo Mata-Torres: Laboratorio de Etnofarmacología, Departamento de Biología Celular, Facultad de Ciencias, Universidad Nacional Autónoma de México, Mexico City, Mexico.
  2. Adolfo Andrade-Cetto: Laboratorio de Etnofarmacología, Departamento de Biología Celular, Facultad de Ciencias, Universidad Nacional Autónoma de México, Mexico City, Mexico.
  3. Fernanda Espinoza-Hernández: Laboratorio de Etnofarmacología, Departamento de Biología Celular, Facultad de Ciencias, Universidad Nacional Autónoma de México, Mexico City, Mexico.

Abstract

Liver plays a pivotal role in maintaining blood glucose levels through complex processes which involve the disposal, storage, and endogenous production of this carbohydrate. Insulin is the hormone responsible for regulating hepatic glucose production and glucose storage as glycogen, thus abnormalities in its function lead to hyperglycemia in obese or diabetic patients because of higher production rates and lower capacity to store glucose. In this context, two different but complementary therapeutic approaches can be highlighted to avoid the hyperglycemia generated by the hepatic insulin resistance: 1) enhancing insulin function by inhibiting the protein tyrosine phosphatase 1B, one of the main enzymes that disrupt the insulin signal, and 2) direct regulation of key enzymes involved in hepatic glucose production and glycogen synthesis/breakdown. It is recognized that medicinal plants are a valuable source of molecules with special properties and a wide range of scaffolds that can improve hepatic glucose metabolism. Some molecules, especially phenolic compounds and terpenoids, exhibit a powerful inhibitory capacity on protein tyrosine phosphatase 1B and decrease the expression or activity of the key enzymes involved in the gluconeogenic pathway, such as phosphoenolpyruvate carboxykinase or glucose 6-phosphatase. This review shed light on the progress made in the past 7 years in medicinal plants capable of improving hepatic glucose homeostasis through the two proposed approaches. We suggest that Coreopsis tinctoria, Lithocarpus polystachyus, and Panax ginseng can be good candidates for developing herbal medicines or phytomedicines that target inhibition of hepatic glucose output as they can modulate the activity of PTP-1B, the expression of gluconeogenic enzymes, and the glycogen content.

Keywords

References

  1. Molecules. 2019 May 17;24(10): [PMID: 31108940]
  2. Biomolecules. 2019 Dec 11;9(12): [PMID: 31835878]
  3. J Agric Food Chem. 2019 Jun 19;67(24):6765-6772 [PMID: 31180676]
  4. Fitoterapia. 2016 Apr;110:44-51 [PMID: 26915302]
  5. Fitoterapia. 2020 Oct;146:104682 [PMID: 32628985]
  6. J Chromatogr A. 2017 Jun 9;1501:128-133 [PMID: 28473201]
  7. Nutrients. 2019 Jan 30;11(2): [PMID: 30704063]
  8. Pharm Biol. 2015 Jul;53(7):1030-4 [PMID: 25609152]
  9. Heliyon. 2021 Apr 07;7(4):e06596 [PMID: 33898800]
  10. Biochim Biophys Acta. 2006 Oct;1760(10):1505-12 [PMID: 16828971]
  11. Faraday Discuss. 2019 Aug 15;218(0):202-218 [PMID: 31119225]
  12. Bioorg Chem. 2021 May;110:104775 [PMID: 33725509]
  13. Bioorg Med Chem Lett. 2020 Feb 15;30(4):126943 [PMID: 31924496]
  14. Arch Pharm Res. 2015 Dec;38(12):2216-27 [PMID: 26152875]
  15. Fitoterapia. 2019 Sep;137:104255 [PMID: 31271785]
  16. J Ethnopharmacol. 2021 Mar 25;268:113577 [PMID: 33171271]
  17. Chem Biol Interact. 2016 Jun 25;253:27-37 [PMID: 27060210]
  18. J Agric Food Chem. 2020 Oct 14;68(41):11434-11448 [PMID: 32965110]
  19. J Ethnopharmacol. 2019 Jun 12;237:159-170 [PMID: 30902747]
  20. Biomed Pharmacother. 2020 Dec;132:110866 [PMID: 33113426]
  21. Diabetes. 2010 Nov;59(11):2697-707 [PMID: 20705776]
  22. Biomed Chromatogr. 2020 Jan;34(1):e4705 [PMID: 31629370]
  23. Arch Pharm Res. 2017 Nov;40(11):1265-1270 [PMID: 26374248]
  24. Pharmacognosy Res. 2016 Mar;8(Suppl 1):S38-41 [PMID: 27114690]
  25. Bioorg Chem. 2017 Jun;72:273-281 [PMID: 28499188]
  26. Nature. 2001 Dec 13;414(6865):799-806 [PMID: 11742412]
  27. Chem Biol Interact. 2016 May 25;252:47-53 [PMID: 27038876]
  28. Fitoterapia. 2017 Jun;119:83-89 [PMID: 28400224]
  29. Biomed Pharmacother. 2017 Dec;96:37-47 [PMID: 28963949]
  30. Biomed Pharmacother. 2019 Jan;109:2342-2347 [PMID: 30551493]
  31. Biomed Res Int. 2015;2015:139451 [PMID: 26064877]
  32. Chin J Nat Med. 2019 Jan;17(1):15-21 [PMID: 30704618]
  33. Molecules. 2021 Mar 07;26(5): [PMID: 33800074]
  34. Acta Biochim Pol. 2018;65(1):67-78 [PMID: 29494709]
  35. Spectrochim Acta A Mol Biomol Spectrosc. 2021 Oct 5;259:119910 [PMID: 33992895]
  36. J Ethnopharmacol. 2015 Aug 02;171:28-36 [PMID: 26027757]
  37. Arch Pharm Res. 2020 Sep;43(9):961-975 [PMID: 32978714]
  38. PLoS One. 2018 May 16;13(5):e0196736 [PMID: 29768504]
  39. J Nat Prod. 2017 Nov 22;80(11):2874-2882 [PMID: 29064696]
  40. Int J Anal Chem. 2019 Nov 22;2019:5861692 [PMID: 31885592]
  41. Pharm Biol. 2016;54(3):474-80 [PMID: 26084800]
  42. Biomed Pharmacother. 2019 Jun;114:108842 [PMID: 30954891]
  43. J Biol Chem. 1988 May 15;263(14):6731-7 [PMID: 2834387]
  44. Biochem Biophys Res Commun. 1992 Nov 16;188(3):1305-11 [PMID: 1280135]
  45. Bioorg Chem. 2017 Jun;72:293-300 [PMID: 28499190]
  46. Biomed Pharmacother. 2019 Feb;110:449-455 [PMID: 30530047]
  47. J Ethnopharmacol. 2020 Jun 12;255:112744 [PMID: 32165174]
  48. Mol Cell Biol. 2000 Aug;20(15):5479-89 [PMID: 10891488]
  49. J Ethnopharmacol. 2019 Dec 5;245:112167 [PMID: 31422110]
  50. Curr Med Chem. 2005;12(1):1-22 [PMID: 15638728]
  51. Org Lett. 2019 Dec 6;21(23):9463-9467 [PMID: 31746610]
  52. PLoS One. 2016 Nov 28;11(11):e0166557 [PMID: 27893760]
  53. Fitoterapia. 2019 Jan;132:40-45 [PMID: 30496807]
  54. Fitoterapia. 2015 Jun;103:113-21 [PMID: 25810314]
  55. Am J Physiol. 1995 May;268(5 Pt 1):E932-40 [PMID: 7762648]
  56. Phytomedicine. 2019 May;58:152891 [PMID: 30901665]
  57. Science. 1991 Oct 25;254(5031):573-6 [PMID: 1948033]
  58. J Agric Food Chem. 2020 Oct 7;68(40):11151-11160 [PMID: 32902977]
  59. Bioorg Chem. 2020 Nov;104:104319 [PMID: 33011531]
  60. Anal Chim Acta. 2021 Apr 29;1156:338359 [PMID: 33781459]
  61. Nat Rev Dis Primers. 2015 Jul 23;1:15019 [PMID: 27189025]
  62. J Ethnopharmacol. 2016 Dec 4;193:500-509 [PMID: 27686268]
  63. J Ethnopharmacol. 2020 Oct 28;261:112997 [PMID: 32534114]
  64. J Agric Food Chem. 2017 Aug 2;65(30):6211-6221 [PMID: 28699753]
  65. Int J Biol Macromol. 2015 Jan;72:951-9 [PMID: 25316427]
  66. Molecules. 2015 Jun 18;20(6):11257-71 [PMID: 26096433]
  67. Exp Mol Med. 2016 Mar 11;48:e218 [PMID: 26964834]
  68. Diabetes Care. 2021 Jan;44(Suppl 1):S15-S33 [PMID: 33298413]
  69. Chin Herb Med. 2020 Mar 14;12(2):195-199 [PMID: 36119797]
  70. J Clin Invest. 2000 Feb;105(3):311-20 [PMID: 10675357]
  71. Pharm Biol. 2016 Sep;54(9):1671-9 [PMID: 26864726]
  72. J Agric Food Chem. 2019 Dec 11;67(49):13624-13634 [PMID: 31743023]
  73. Molecules. 2019 Jan 16;24(2): [PMID: 30654451]
  74. Br J Pharmacol. 2005 Sep;146(2):234-43 [PMID: 15997237]
  75. Saudi J Biol Sci. 2019 Jul;26(5):985-988 [PMID: 31303829]
  76. Phytomedicine. 2016 Jun 1;23(6):632-40 [PMID: 27161404]
  77. J Nat Prod. 2016 May 27;79(5):1365-72 [PMID: 27142786]
  78. Biomed Pharmacother. 2017 Jan;85:725-732 [PMID: 27916421]
  79. Biomed Pharmacother. 2018 Sep;105:246-255 [PMID: 29859467]
  80. J Ethnopharmacol. 2017 Jan 4;195:166-172 [PMID: 27840258]
  81. J Agric Food Chem. 2020 Aug 19;68(33):8797-8811 [PMID: 32603104]
  82. J Biol Chem. 1995 Sep 1;270(35):20503-8 [PMID: 7544790]
  83. Eur J Med Chem. 2017 Jul 7;134:24-33 [PMID: 28395151]
  84. Phytochem Anal. 2016 Jan-Feb;27(1):23-31 [PMID: 26333151]
  85. Bioorg Chem. 2019 May;86:679-685 [PMID: 30831529]
  86. J Ethnopharmacol. 2021 Mar 25;268:113556 [PMID: 33157223]
  87. J Nat Prod. 2016 Feb 26;79(2):281-92 [PMID: 26841168]
  88. Chin J Nat Med. 2019 Dec;17(12):963-969 [PMID: 31882052]
  89. Biochem Biophys Res Commun. 2000 Aug 11;274(3):583-9 [PMID: 10924321]
  90. Fitoterapia. 2015 Apr;102:182-8 [PMID: 25665941]
  91. J Ethnopharmacol. 2016 Nov 4;192:256-263 [PMID: 27377336]
  92. J Agric Food Chem. 2017 Jul 26;65(29):5926-5934 [PMID: 28662582]
  93. Bioorg Med Chem. 2017 Jul 15;25(14):3706-3713 [PMID: 28522265]
  94. Molecules. 2017 Jun 13;22(6): [PMID: 28608836]
  95. Nat Prod Rep. 2019 Jun 19;36(6):869-888 [PMID: 31187844]
  96. J Pharmacol Sci. 2018 Jun;137(2):212-219 [PMID: 30005910]
  97. Fitoterapia. 2017 Apr;118:126-131 [PMID: 28322990]
  98. Phytochemistry. 2017 Dec;144:106-112 [PMID: 28917090]
  99. Saudi J Biol Sci. 2020 Dec;27(12):3334-3341 [PMID: 33304139]
  100. J Asian Nat Prod Res. 2015;17(3):217-23 [PMID: 25747599]
  101. J Agric Food Chem. 2020 Aug 5;68(31):8223-8231 [PMID: 32650643]
  102. Chem Biol Interact. 2017 Dec 25;278:65-73 [PMID: 29031618]
  103. J Ethnopharmacol. 2016 Aug 22;190:231-40 [PMID: 27260409]
  104. Molecules. 2017 Jun 13;22(6): [PMID: 28608833]
  105. Arch Pharm Res. 2017 Dec;40(12):1403-1413 [PMID: 29177868]
  106. Biomed Pharmacother. 2017 Mar;87:145-152 [PMID: 28049096]
  107. J Chromatogr B Analyt Technol Biomed Life Sci. 2018 Aug 15;1092:466-472 [PMID: 30008302]
  108. Oncotarget. 2015 Apr 10;6(10):7788-803 [PMID: 25762623]
  109. Drug Des Devel Ther. 2018 Jan 10;12:121-135 [PMID: 29391777]
  110. J Asian Nat Prod Res. 2019 Jun;21(6):522-527 [PMID: 29665732]
  111. J Ethnopharmacol. 2016 Dec 24;194:706-716 [PMID: 27769948]
  112. Phytother Res. 2015 Jan;29(1):86-92 [PMID: 25266458]
  113. J Biol Chem. 1996 Aug 16;271(33):19810-6 [PMID: 8702689]
  114. Bioorg Chem. 2019 Jul;88:102948 [PMID: 31054429]
  115. J Agric Food Chem. 2017 Jun 7;65(22):4421-4427 [PMID: 28497962]
  116. Cell Commun Signal. 2021 May 25;19(1):61 [PMID: 34034759]
  117. J Nutr Sci. 2020 Jan 20;9:e2 [PMID: 32042410]
  118. Evid Based Complement Alternat Med. 2020 Oct 9;2020:1057648 [PMID: 33133211]
  119. Methods Mol Biol. 2016;1447:1-23 [PMID: 27514797]
  120. Bioorg Chem. 2020 Apr;97:103659 [PMID: 32078940]
  121. Fitoterapia. 2020 Oct;146:104703 [PMID: 32829013]
  122. Phytochemistry. 2019 Oct;166:112054 [PMID: 31284174]
  123. Front Pharmacol. 2020 Mar 03;11:215 [PMID: 32194426]
  124. Molecules. 2016 Aug 19;21(8): [PMID: 27548130]
  125. J Ethnopharmacol. 2019 Oct 5;242:112033 [PMID: 31220600]
  126. Nutrients. 2021 Jan 06;13(1): [PMID: 33419065]
  127. J Nat Prod. 2015 Nov 25;78(11):2822-6 [PMID: 26562611]
  128. Phytochemistry. 2020 Feb;170:112181 [PMID: 31727321]
  129. J Ethnopharmacol. 2020 Jul 15;257:112863 [PMID: 32302715]
  130. Phytochemistry. 2021 Jun;186:112723 [PMID: 33799192]
  131. J Integr Med. 2021 Jan;19(1):66-77 [PMID: 33071211]
  132. Clin Chim Acta. 2007 Jan;375(1-2):20-35 [PMID: 16956601]
  133. Semin Cell Dev Biol. 2015 Jan;37:58-65 [PMID: 25263014]
  134. Fitoterapia. 2016 Apr;110:52-8 [PMID: 26882973]
  135. Science. 1999 Mar 5;283(5407):1544-8 [PMID: 10066179]
  136. J Diabetes. 2015 Jul;7(4):548-61 [PMID: 25224159]
  137. Pharmacol Res. 2018 Apr;130:451-465 [PMID: 29395440]
  138. Molecules. 2020 Aug 01;25(15): [PMID: 32752292]
  139. Front Pharmacol. 2020 Jan 30;10:1666 [PMID: 32082162]
  140. Molecules. 2021 Jun 17;26(12): [PMID: 34204232]
  141. Evid Based Complement Alternat Med. 2021 Jan 12;2021:6625009 [PMID: 33505497]
  142. Org Lett. 2018 Jun 15;20(12):3682-3686 [PMID: 29863363]
  143. Food Funct. 2016 Jul 13;7(7):3130-40 [PMID: 27295301]
  144. BMJ. 2021 Mar 29;372:n160 [PMID: 33781993]
  145. Molecules. 2015 Jun 17;20(6):11173-83 [PMID: 26091075]
  146. J Clin Invest. 1997 Jul 15;100(2):449-58 [PMID: 9218523]
  147. Biomed Res Int. 2016;2016:8432759 [PMID: 26989693]
  148. J Nat Prod. 2019 Dec 27;82(12):3267-3278 [PMID: 31738062]
  149. Phytomedicine. 2015 Apr 15;22(4):477-86 [PMID: 25925970]
  150. Pharm Biol. 2015 Aug;53(8):1176-82 [PMID: 25853967]
  151. J Ethnopharmacol. 2017 May 5;203:39-46 [PMID: 28341245]
  152. Molecules. 2018 Aug 28;23(9): [PMID: 30154343]
  153. Molecules. 2020 May 06;25(9): [PMID: 32384790]
  154. J Ethnopharmacol. 2021 Dec 5;281:114556 [PMID: 34438036]
  155. J Clin Invest. 1989 Sep;84(3):976-83 [PMID: 2547842]
  156. Biomed Pharmacother. 2019 Jan;109:188-194 [PMID: 30396076]
  157. Diabetes. 2000 Feb;49(2):284-92 [PMID: 10868945]
  158. Food Chem. 2021 Apr 9;357:129759 [PMID: 33878587]
  159. Org Lett. 2016 Feb 5;18(3):444-7 [PMID: 26760061]
  160. J Chromatogr A. 2018 Jun 29;1556:55-63 [PMID: 29729863]
  161. Curr Opin Chem Biol. 1998 Oct;2(5):633-41 [PMID: 9818190]
  162. Expert Rev Mol Med. 2012 Jan 11;14:e1 [PMID: 22233681]
  163. Saudi J Biol Sci. 2021 Jul;28(7):3669-3677 [PMID: 34220217]
  164. Mol Aspects Med. 2015 Dec;46:21-33 [PMID: 26549348]
  165. Bioorg Chem. 2019 Jun;87:12-15 [PMID: 30852232]
  166. J Med Food. 2015 Sep;18(9):987-98 [PMID: 25961463]
  167. J Nat Prod. 2018 Sep 28;81(9):2091-2100 [PMID: 30207720]
  168. Chem Biodivers. 2015 Jun;12(6):937-45 [PMID: 26080739]
  169. Sci Rep. 2019 Jan 24;9(1):599 [PMID: 30679477]
  170. Planta Med. 2019 Nov;85(16):1263-1274 [PMID: 31604352]
  171. J Chromatogr Sci. 2016 May-Jun;54(5):805-10 [PMID: 26896347]
  172. J Ethnopharmacol. 2018 Jan 30;211:117-125 [PMID: 28951243]
  173. Biomed Pharmacother. 2017 Aug;92:1062-1072 [PMID: 28618651]
  174. J Biol Chem. 1997 Mar 21;272(12):8026-31 [PMID: 9065475]
  175. J Nat Med. 2021 Jan;75(1):186-193 [PMID: 32926336]
  176. Bioorg Chem. 2017 Dec;75:139-148 [PMID: 28946049]
  177. J Ethnopharmacol. 2021 Oct 28;279:114339 [PMID: 34166734]
  178. Bioorg Med Chem. 2015 Jul 1;23(13):3730-7 [PMID: 25907369]
  179. Molecules. 2017 Jul 20;22(7): [PMID: 28726759]
  180. Expert Rev Clin Pharmacol. 2013 Jan;6(1):41-7 [PMID: 23272792]
  181. J Ethnopharmacol. 2018 Apr 24;216:8-17 [PMID: 29339110]
  182. Biomed Pharmacother. 2021 May;137:111315 [PMID: 33561645]
  183. J Nat Prod. 2019 Oct 25;82(10):2916-2924 [PMID: 31618031]
  184. Nat Rev Drug Discov. 2021 Mar;20(3):200-216 [PMID: 33510482]
  185. J Tradit Complement Med. 2015 Sep 02;6(3):281-8 [PMID: 27419094]
  186. Nat Prod Res. 2020 Jun;34(12):1772-1776 [PMID: 30499349]
  187. Molecules. 2016 Dec 27;22(1): [PMID: 28035984]
  188. J Nat Prod. 2020 May 22;83(5):1598-1610 [PMID: 32255628]
  189. Plants (Basel). 2021 Sep 29;10(10): [PMID: 34685869]
  190. Diabetes Metab. 2004 Nov;30(5):398-408 [PMID: 15671906]
  191. Bioorg Med Chem Lett. 2017 Nov 15;27(22):5076-5081 [PMID: 28951079]

Word Cloud

Created with Highcharts 10.0.0glucosehepaticproductioncaninsulinenzymesglycogenhyperglycemiamedicinalplantsstoragefunctioncapacitytwoapproachesproteintyrosinephosphatase1BkeyinvolvedmoleculesexpressionactivitygluconeogenicoutputPTP-1BLiverplayspivotalrolemaintainingbloodlevelscomplexprocessesinvolvedisposalendogenouscarbohydrateInsulinhormoneresponsibleregulatingthusabnormalitiesleadobesediabeticpatientshigherrateslowerstorecontextdifferentcomplementarytherapeutichighlightedavoidgeneratedresistance:1enhancinginhibitingonemaindisruptsignal2directregulationsynthesis/breakdownrecognizedvaluablesourcespecialpropertieswiderangescaffoldsimprovemetabolismespeciallyphenoliccompoundsterpenoidsexhibitpowerfulinhibitorydecreasepathwayphosphoenolpyruvatecarboxykinase6-phosphatasereviewshedlightprogressmadepast7 yearscapableimprovinghomeostasisproposedsuggestCoreopsistinctoriaLithocarpuspolystachyusPanaxginsenggoodcandidatesdevelopingherbalmedicinesphytomedicinestargetinhibitionmodulatecontentApproachesDecreaseHyperglycemiaTargetingImpairedHepaticGlucoseHomeostasisUsingMedicinalPlantsinhibitorsresistancenaturalproducts

Similar Articles

Cited By (3)