Background Ferulic acid provides a neuroprotective effect during cerebral ischemia through its anti-oxidant function. Protein phosphatase 2A (PP2A) is a serine and threonine phosphatase that contributes broadly to normal brain function. This study investigated whether ferulic acid regulates PP2A subunit B in a middle cerebral artery occlusion (MCAO) animal model and glutamate toxicity-induced neuronal cell death. Methodology/Principal Findings MCAO was surgically induced to yield permanent cerebral ischemic injury in rats. The rats were treated with either vehicle or ferulic acid (100 mg/kg, i.v.) immediately after MCAO, and cerebral cortex tissues were collected 24 h after MCAO. A proteomics approach, RT-PCR, and Western blot analyses performed to identification of PP2A subunit B expression levels. Ferulic acid significantly reduced the MCAO-induced infarct volume of the cerebral cortex. A proteomics approach elucidated the reduction of PP2A subunit B in MCAO-induced animals, and ferulic acid treatment prevented the injury-induced reduction in PP2A subunit B levels. RT-PCR and Western blot analyses also showed that ferulic acid treatment attenuates the injury-induced decrease in PP2A subunit B levels. Moreover, the number of PP2A subunit B-positive cells was reduced in MCAO-induced animals, and ferulic acid prevented these decreases. In cultured neuronal cells, ferulic acid treatment protected cells against glutamate toxicity and prevented the glutamate-induced decrease in PP2A subunit B. Conclusions/Significance These results suggest that the maintenance of PP2A subunit B by ferulic acid in ischemic brain injury plays an important role for the neuroprotective function of ferulic acid.
References
[1]
Cheng CY, Ho TY, Lee EJ, Su SY, Tang NY, et al. (2008) Ferulic acid reduces cerebral infarct through its antioxidative and anti-inflammatory effects following transient focal cerebral ischemia in rats. Am J Chin Med 36: 1105–1119.
[2]
Cheng CY, Su SY, Tang NY, Ho TY, Chiang SY, et al. (2008) Ferulic acid provides neuroprotection against oxidative stress-related apoptosis after cerebral ischemia/reperfusion injury by inhibiting ICAM-1 mRNA expression in rats. Brain Res 1209: 136–150.
[3]
Srinivasan M, Sudheer AR, Pillai KR, Kumar PR, Sudhakaran PR, et al. (2006) Influence of ferulic acid on gamma-radiation induced DNA damage, lipid peroxidation and antioxidant status in primary culture of isolated rat hepatocytes. Toxicology 228: 249–58.
[4]
Srinivasan M, Sudheer AR, Menon VP (2007) Ferulic Acid: therapeutic potential through its antioxidant property. J Clin Biochem Nutr 40: 92–100.
[5]
Millward TA, Zolnierowicz S, Hemmings BA (1991) Regulation of protein kinase cascades by protein phosphatase 2A. Trends Biochem Sci 24: 186–191.
[6]
Zolnierowicz S (2000) Type 2A protein phosphatase, the complex regulator of numerous signaling pathways. Biochem Pharmacol 60: 1225–1235.
[7]
Janssens V, Goris J (2001) Protein phosphatase 2A: a highly regulated family of serine/threonine phosphatases implicated in cell growth and signalling. Biochem J 353: 417–439.
[8]
Sontag E, Nunbhakdi-Craig V, Lee G, Bloom GS, Mumby M (1996) Regulation of the phosphorylation state and microtubule-binding activity of Tau by protein phosphatase 2A. Neuron 17: 1201–1207.
[9]
Stone SR, Hofsteenge J, Hemmings BA (1987) Molecular cloning of cDNAs encoding two isoforms of the catalytic subunit of protein phosphatase 2A. Biochemistry 26: 7215–7220.
[10]
Csortos C, Zolnierowicz S, Bakó E, Durbin SD, DePaoli-Roach AA (1996) High complexity in the expression of the B' subunit of protein phosphatase 2A0Evidence for the existence of at least seven novel isoforms. J Biol Chem 271: 2578–2588.
[11]
Strack S, Zaucha JA, Ebner FF, Colbran JR, Wadzinski BE (1998) Brain protein phosphatase 2A: developmental regulation and distinct cellular and subcellular localization by B subunits. J Comp Neurol 392: 515–527.
[12]
Sim AT (1991) The regulation and function of protein phosphatases in the brain. Mol Neurobiol 5: 229–246.
[13]
Koh PO (2011) Focal Cerebral Ischemia Reduces Protein Phosphatase 2A Subunit B Expression in Brain Tissue and HT22 Cells. Lab Anim Res 27: 73–76.
[14]
Koh PO (2012) Ferulic acid prevents the cerebral ischemic injury-induced decrease of Akt and Bad phosphorylation. Neurosci Lett 507: 156–160.
[15]
Koh PO (2012) Ferulic acid prevents the cerebral ischemic injury-induced decreases of astrocytic phosphoprotein PEA-15 and its two phosphorylated forms. Neurosci Lett 511: 101–105.
[16]
Sung JH, Cho EH, Cho JH, Won CK, Kim MO, et al. (2012) Identification of Proteins Regulated by Ferulic Acid in a Middle Cerebral Artery Occlusion Animal Model-A Proteomics Approach. J Vet Med Sci 74: 1401–1407.
[17]
Sontag E (2001) Protein phosphatase 2A: the Trojan Horse of cellular signaling. Cell Signal 13: 7–16.
[18]
Gong CK, Lidsky T, Wegiel J, Zuck L, Grundke-Iqbal I, et al. (2000) Phosphorylation of microtubule-associated protein tau is regulated by protein phosphatase 2A in mammalian brain. Implications for neurofibrillary degeneration in Alzheimer’s disease. J Biol Chem 275: 5535–5544.
[19]
Sontag E, Hladik C, Montgomery L, Luangpirom A, Mudrak I, et al. (2004) Downregulation of protein phosphatase 2A carboxyl methylation and methyltransferase may contribute to Alzheimer disease pathogenesis. J Neuropathol Exp Neurol 63: 1080–1091.
[20]
Liu R, Wang JZ (2009) Protein phosphatase 2A in Alzheimer's disease. Pathophysiology 16: 273–277.
[21]
Chen L, Liua L, Yinb J, Luoa Y, Huanga S (2009) Hydrogen peroxide-induced neuronal apoptosis is associated with inhibition of protein phosphatase 2A and 5, leading to activation of MAPK pathway. Int J Biochem Cell Biol 41: 1284–1295.
[22]
Li S, Brignole C, Marcellus R, Thirlwell S, Binda O, et al. (2009) The adenovirus E4orf4 protein induces G2/M arrest and cell death by blocking protein phosphatase 2A activity regulated by the B55 subunit. J Virol 83: 8340–8352.
[23]
Maher P, Davis JB (1996) The role of monoamine metabolism in oxidative glutamate toxicity. J Neurosci 16: 6394–6401.
[24]
Longa EZ, Weinstein PR, Carlson S, Cummins R (1989) Reversible middle cerebral artery occlusion without craniectomy in rats. Stroke 20: 84–91.
[25]
Noh HS, Hah YS, Nilufar R, Han J, Bong JH, et al. (2006) Acetoacetate protects neuronal cells from oxidative glutamate toxicity. J Neurosci Res 83: 702–709.