22,23-dihydrobrassicasterol

22,23-dihydrobrassicasterol is a lipid of Sterol Lipids (ST) class. 22,23-dihydrobrassicasterol is associated with abnormalities such as Diabetes, Macular degeneration, Drusen, Systemic disease and Diabetes Mellitus. The involved functions are known as cholesterol metabolism, Synthesis, Intestinal Absorption, Liver function and cholesterol absorption. 22,23-dihydrobrassicasterol often locates in Back and Cell membrane. The associated genes with 22,23-dihydrobrassicasterol are apolipoprotein E-3. The related lipids are Total cholesterol, campesterol, lathosterol, Fatty Acids, Nonesterified and Cholesterol, Dietary.

Cross Reference

Introduction

To understand associated biological information of 22,23-dihydrobrassicasterol, we collected biological information of abnormalities, associated pathways, cellular/molecular locations, biological functions, related genes/proteins, lipids and common seen animal/experimental models with organized paragraphs from literatures.

What diseases are associated with 22,23-dihydrobrassicasterol?

22,23-dihydrobrassicasterol is suspected in Diabetes, Macular degeneration, Drusen, Systemic disease, Diabetes Mellitus, Liver diseases and other diseases in descending order of the highest number of associated sentences.

Related references are mostly published in these journals:

Disease Cross reference Weighted score Related literature
Loading... please refresh the page if content is not showing up.

Possible diseases from mapped MeSH terms on references

We collected disease MeSH terms mapped to the references associated with 22,23-dihydrobrassicasterol

MeSH term MeSH ID Detail
Hypolipoproteinemias D007009 9 associated lipids
Xanthomatosis D014973 17 associated lipids
Hyperlipoproteinemia Type II D006938 22 associated lipids
Metabolic Syndrome D024821 44 associated lipids
Coronary Disease D003327 70 associated lipids
Hyperlipidemias D006949 73 associated lipids
Hypercholesterolemia D006937 91 associated lipids
Total 7

PubChem Associated disorders and diseases

What pathways are associated with 22,23-dihydrobrassicasterol

There are no associated biomedical information in the current reference collection.

PubChem Biomolecular Interactions and Pathways

Link to PubChem Biomolecular Interactions and Pathways

What cellular locations are associated with 22,23-dihydrobrassicasterol?

Related references are published most in these journals:

Location Cross reference Weighted score Related literatures
Loading... please refresh the page if content is not showing up.

What functions are associated with 22,23-dihydrobrassicasterol?


Related references are published most in these journals:

Function Cross reference Weighted score Related literatures

What lipids are associated with 22,23-dihydrobrassicasterol?

Related references are published most in these journals:

Lipid concept Cross reference Weighted score Related literatures
Loading... please refresh the page if content is not showing up.

What genes are associated with 22,23-dihydrobrassicasterol?

Related references are published most in these journals:


Gene Cross reference Weighted score Related literatures

What common seen animal models are associated with 22,23-dihydrobrassicasterol?

There are no associated biomedical information in the current reference collection.

NCBI Entrez Crosslinks

All references with 22,23-dihydrobrassicasterol

Download all related citations
Per page 10 20 50 100 | Total 313
Authors Title Published Journal PubMed Link
Strom SS et al. Phytoestrogen intake and prostate cancer: a case-control study using a new database. 1999 Nutr Cancer pmid:10227039
Ramos SC et al. The role of soluble fiber intake in patients under highly effective lipid-lowering therapy. 2011 Nutr J pmid:21810257
Ramprasath VR et al. Consumption of a dietary portfolio of cholesterol lowering foods improves blood lipids without affecting concentrations of fat soluble compounds. 2014 Nutr J pmid:25326876
Miettinen TA et al. Twenty-one year tracking of serum non-cholesterol sterols. The Cardiovascular Risk in Young Finns study. 2009 Nutr Metab Cardiovasc Dis pmid:19185477
Lupattelli G et al. Patterns of cholesterol metabolism: pathophysiological and therapeutic implications for dyslipidemias and the metabolic syndrome. 2011 Nutr Metab Cardiovasc Dis pmid:21855307
Lupattelli G et al. Non-cholesterol sterols in different forms of primary hyperlipemias. 2012 Nutr Metab Cardiovasc Dis pmid:20708389
Ras RT et al. Increases in plasma plant sterols stabilize within four weeks of plant sterol intake and are independent of cholesterol metabolism. 2016 Nutr Metab Cardiovasc Dis pmid:26806045
Miettinen TA et al. Non-cholesterol sterols in serum and endarterectomized carotid arteries after a short-term plant stanol and sterol ester challenge. 2011 Nutr Metab Cardiovasc Dis pmid:20096545
Suttiarporn P et al. Structures of phytosterols and triterpenoids with potential anti-cancer activity in bran of black non-glutinous rice. 2015 Nutrients pmid:25756784
Mansour MP et al. Characterization of oilseed lipids from "DHA-producing Camelina sativa": a new transformed land plant containing long-chain omega-3 oils. 2014 Nutrients pmid:24566436
Martins CM et al. Common sources and composition of phytosterols and their estimated intake by the population in the city of São Paulo, Brazil. 2013 Nutrition pmid:23422542
De Vuono S et al. Laparoscopic sleeve gastrectomy modifies cholesterol synthesis but not cholesterol absorption. Obes Res Clin Pract pmid:28057416
Chan DC et al. Plasma markers of cholesterol homeostasis and apolipoprotein B-100 kinetics in the metabolic syndrome. 2003 Obes. Res. pmid:12690090
Márk L and Paragh G [Change in the cholesterol metabolism associated with the combined inhibition of synthesis and absorption]. 2007 Orv Hetil pmid:17403635
Ijzerman RG et al. The association between low birth weight and high levels of cholesterol is not due to an increased cholesterol synthesis or absorption: analysis in twins. 2002 Pediatr. Res. pmid:12438663
Noto D et al. Plasma non-cholesterol sterols: a useful diagnostic tool in pediatric hypercholesterolemia. 2010 Pediatr. Res. pmid:20091938
Valitova JN et al. Effects of sterol-binding agent nystatin on wheat roots: the changes in membrane permeability, sterols and glycoceramides. 2011 Phytochemistry pmid:21726881
Montserrat-de la Paz S et al. The sterols isolated from Evening Primrose oil modulate the release of proinflammatory mediators. 2012 Phytomedicine pmid:22819447
Choi JM et al. Identification of campesterol from Chrysanthemum coronarium L. and its antiangiogenic activities. 2007 Phytother Res pmid:17604370
Hong Z et al. The Rice brassinosteroid-deficient dwarf2 mutant, defective in the rice homolog of Arabidopsis DIMINUTO/DWARF1, is rescued by the endogenously accumulated alternative bioactive brassinosteroid, dolichosterone. 2005 Plant Cell pmid:15994910