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Published on: October 12, 2017
Targeting the Role of Lipoprotein (a) in Stroke
Zahra Mazhar1, Andrew Hughes1, Mahdi Garelnabi2
1Department of Clinical Laboratory and Nutritional Sciences, University of Massachusetts, Lowell, MA, United States.
Insights
High levels of Lipoprotein (a) (Lp(a)) are linked to increased stroke risk. Further research is needed to understand Lp(a) distribution and its role in stroke pathogenesis for better prevention strategies.
Area of Science:
- Cardiovascular Science
- Neurology
- Biochemistry
Background:
- Stroke is a leading cause of death in the US, with over 140,000 annual fatalities.
- Modifiable risk factors for stroke are under extensive investigation.
- Lipoprotein (a) (Lp(a)) is implicated in cardiovascular disorders and stroke pathogenesis.
Purpose of the Study:
- To review the association between Lipoprotein (a) (Lp(a)) and stroke risk.
- To explore the molecular mechanisms and microRNA components controlling Lp(a) expression and function.
- To identify future research opportunities regarding Lp(a) in stroke.
Main Methods:
- Literature review focusing on Lp(a) metabolism and stroke.
- Analysis of existing research on Lp(a) plasma concentration and stroke risk.
- Examination of studies on small molecule Lp(a) distribution and stroke.
Main Results:
- High plasma concentrations of Lipoprotein (a) (Lp(a)) show clear associations with increased stroke risk.
- Small isoforms of apolipoprotein A-1 (ApoA-1) containing lipoproteins may increase atherogenicity.
- Limited research currently exists on small molecule Lp(a) distribution and stroke risk.
Conclusions:
- Understanding Lipoprotein (a) (Lp(a))'s role in stroke requires investigating its molecular mechanisms, including microRNA control.
- Further research is crucial to elucidate the link between Lp(a) and both first-time and recurrent strokes.
- Identifying Lp(a) distribution patterns may offer new avenues for stroke prevention and treatment.
Background:
Stroke is the third leading cause of death in the United States, behind only heart disease and cancer, with over 140,000 associated deaths per year.
Methods:
Considerable research is ongoing to examine the role of modifiable risk factors which may cause or contribute to stroke. Although age and family history are generally considered to be the major risk factors, there are several modifiable and non-modifiable risk factors that are linked to the pathogenesis of a stroke. Lipoprotein (a), or Lp(a), is a type of low-density lipoprotein containing an integral apolipoprotein B100 (apoB100) component with an attached apolipoprotein A-1 (ApoA-1) isoform via a disulfide linkage. Lp(a) metabolism is of great interest as it sheds light on its role in pathogenesis of not only cardiovascular disorders but also stroke. Although Lp(a) has been identified as an "LDL-like particle", its metabolism differs from low density lipoprotein (LDL). Despite some ambiguity in the literature regarding the causative effect of Lp(a) on stroke, there are clear associations of high plasma Lp(a) concentration and risk of stroke. Furthermore, the small isoforms of ApoA-1-containing lipoproteins have been shown to increase atherogenicity in atherosclerotic patients.
Conclusion:
Currently, there is little research examining the importance of small molecule Lp(a) distribution and risk for stroke, both on a first-case and recurrent basis. Understanding the role of Lp (a) in stroke requires investigating its molecular mechanisms particularly the key microRNA (s) components that control its expression and function (s). Therefore, the main objective of this review is to discuss the broader link between Lp(a) and stroke and to identify opportunities for future investigation and potential research prospects on the role of Lp (a) in stroke.
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