The aim of this study was to explore the effect of picroside II on neuronal apoptosis and the expression of caspase-3 and poly ADP-ribose polymerase (PARP) following middle cerebral artery occlusion/reperfusion in male Wistar rats. Picroside II (10 mg/kg) was administered intravenously into the tail vein of the animals. The neurological function deficits were evaluated with the Bederson’s test and the cerebral infarction volume was visualized with tetrazolium chloride (TTC) staining. The apoptotic cells were counted by
Studies have shown that the caspase-family is the promoter and implementer of apoptosis in mammalian cells, among which, caspase-3 is the most critical downstream apoptosis protease in the caspase cascade “waterfall” [
The plant
Current research on picroside II is focused on its neuroprotective [
There was no neurobehavioral dysfunction symptom in rats of the sham-operation group, whose Bederson’s score was 0. After cerebral ischemic reperfusion injury, all animals showed neurological defects. The Bederson’s scores in the treatment group were obviously lower than that in the control group (
By TTC stain, no ischemia infarction was shown in the brain slices of the sham-operation group, while infarction lesion appeared in all the experimental rats after cerebral ischemic reperfusion injury. The volume of cerebral infarction in the treatment group were significantly lower than that in the control group (
A few apoptotic cells were scattered in the cortex and the striatum in the sham-operation group. Apoptotic cells were significantly increased in the control group. As we expected, the amount of apoptosis in the treatment group was low compared to those found in the cortex (
With the help of immunohistochemistry, we found that there were no region differences between the cortex, the striatum and the hippocampus. Thus, we calculated the absorbance values (
Weak PARP expression was shown in the cortex, the striatum and the hippocampus in sham-operation group rats. The number of PARP-positive cells rapidly increased, and the
The concentrations of caspase-3 and PARP were low in the brain tissue of the sham-operation group rats, and increased significantly in the control group rats. In the treatment group, the concentration of caspase-3 (
Among various mechanisms, the modulation of caspases expression plays a critical role for the common pathway of apoptosis. Caspase-3 is a key member of executioner caspases. Using rat MCAO/R models, Yang
These data suggest that picroside II may inhibit caspase-3 expression and reduce PARP degradation after cerebral ischemic injury, which may contribute to the maintenance of NAD+ level in penumbra, thereby enabling PARP to utilize residual energy for the reparation of neuronal damage. Inhibiting apoptosis ultimately leads to improved neurobehavioral outcome.
The total of 60 adult female Wistar rats, weight 230–250 g, SPF grade, were granted by Qingdao Laboratory Animal Center (SCXK (LU) 20070010). The local legislation for ethics of experiment on animals and guidelines for the care and use of laboratory animals were followed in all animal procedures [
Picroside II was obtained from Kui Qing, Tianjin Medical Technology Co., Ltd., (CAS No: 39012-20-9, purity > 98%). It was diluted into 1% solution with 1 M PBS sodium. According to Xiao’s report [
All animals were scored at ischemia 2 h reperfusion 22 h by an investigator who was blinded to the experiment according to the standard of Bederson’s test [
To determine the infarction volume, five rats in each group were decapitated at ischemia 2 h reperfusion 22 h after MCAO/R. The brain tissue was removed and successively sliced into 2.0 mm thick coronal sections. The total of five brain slices were incubated in 2% TTC solution for 10 min at 37 °C and then transferred into 4% formaldehyde solution for fixation. Normal brain tissue appeared uniform red while the infarction region showed white. The infarction volumes were calculated in a blinded manner with Adobe PhotoShop CS analysis system. The data were expressed as the percentage of the infarction volume/the ipsilateral hemisphere volume (%) at the coronal section of optic chiasma.
At ischemia 2 h reperfusion 22 h after MCAO/R, five rats in each group were deeply anesthetized by 10% chloral hydrate (300 mg/kg), reperfused with sodium chloride and 4% formaldehyde 200 mL from the heart into the aorta, and then decapitated at given time. Brain samples were chosen from frontal fontanelle 2 mm to occipital fontanelle 4 mm by a stereotaxic point, post-fixed in 4% formaldehyde for 2 h, dehydrated in alcohol gradually, hyalinized by dimethylbenzene, embedded in paraffin, then sectioned at a thickness of 5 μm, adhered to the sections prepared with poly-
Rabbit anti-rat Caspase-3 and PARP moloclonal antibody, SABC immunohistochemistry kit, DAB dye were purchased from Boster Biological Company, Wuhan, China. Paraffin-embedded sections were deparaffinaged in dimethylbenzene, hydrated successively in gradient ethanol, and antigen was restored twice in a microwave oven. Immunohistochemical procedures were performed strictly according to the manufacturer’s guidelines. Under a microscope, those with brown granules in cytoplasm were considered as positive cells. And the slides with the addition of 0.01 mmol/L PBS (containing 1:200 non-immunity animal serum), instead of primary antibody, showed no response. Four serial sections were chosen from each experimental rat, and four views of the cortex, striatum hippocampus in each section were observed randomly under a 400-fold fluorescent microscope. Absorbance value (A) of each view was detected by a LEICA Qwin microgramme analytical system (Leica Company).
Rat caspase-3 and PARP ELISA kits were purchased from Blue Gene Co. Ltd. Five rats in each group were deeply anesthetized and decapitated at given time after MCAO/R. At ischemia 2 h reperfusion 22 h after MCAO/R, the ischemic hemisphere tissues (0.5 g) from rats in all groups were quickly removed and ground fully into brain tissue homogenate. Normal sodium 500 μL was then added, mixed well and centrifuged for 10 minutes at 12,000 rpm. The upper limpid liquid was collected and stored at −20 °C (to avoid repeated freeze-thaw cycles). All standards were prepared before starting assay procedures. Firstly, we secured the desired number of coated wells in the holder and added 50 μL of standards or samples to the appropriate well of the antibody pre-coated microtiter plate. 100 μL of conjugate was then added to each well, mixed thoroughly, covered and incubated for 1 h at 37 °C. The microtiter plate was washed five times using distilled or de-ionized water; 50 μL of substrate A and B was added to each well, covered and incubated for 15 minutes at 25 °C. Finally, 50 μL of stop solution was added to each well, thoroughly mixed and the mean absorbance value at 450 nm for each set of reference standards and samples was calculated. Calculation of results: The average A450 value for each standard, control and test sample was divided by the average A450 of the standard 0 and multiplied by 100 to obtain %B/B0 for each sample. A standard curve was prepared by plotting the average absorbance or the %B/B0 value of each standard (on the y axis)
SPSS11.5 software was used for statistical analysis. Data were expressed as mean ± standard error (
This study suggested that picroside II might reduce the expressions of Caspase-3 and PARP to inhibit the neuronal apoptosis induced by cerebral ischemia reperfusion injury and improve the neurological function of rats.
This study was supported by grant-in-aids for The National Natural Science Foundation of China (grant No. 30873391 and No. 81041092).
The chemical structure of picroside II (β-
Cerebral infarction volume shown by TTC stain. The normal brain tissue appeared uniformly red in the sham-operation group (
Apoptotic cells in cortex shown by TUNEL × 200. Only a few apoptotic cells in the sham-operation group (
Caspase-3 positive cells in cortex shown by immunohistochemical assay × 400. The expression of Caspase-3 was very weak in the sham-operation group (
PARP positive cells in cortex shown by immunohistochemical assay × 400. The expression of PARP was very weak in the sham-operation group (
Neurobehavioral deficit score and infarct volume (
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| Sham-operation group | 5 | 0.00 ± 0.00 | 0.00 ± 0.00 |
| Control group | 5 | 2.16 ± 0.28 |
77.32 ± 3.06 |
| Treatment group | 5 | 1.27 ± 0.26 |
68.73 ± 3.46 |
The number of apoptotic cells in different brain regions (
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| Sham-operation group | 5 | 4.53 ± 1.13 | 3.79 ± 1.36 | 3.67 ± 1.15 |
| Control group | 5 | 67.62 ± 8.25 |
53.30 ± 6.26 |
41.30 ± 4.24 |
| Treatment group | 5 | 15.64 ± 4.28 |
14.12 ± 4.46 |
12.13 ± 2.46 |
The number of Caspase-3 positive cells (
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| Sham-operation group | 5 | 5.25 ± 1.70 | 4.25 ± 1.95 | 3.75 ± 1.69 |
| Control group | 5 | 33.4 ± 4.07 |
32.80 ± 3.77 |
28.00 ± 3.58 |
| Treatment group | 5 | 15.82 ± 3.30 |
14.12 ± 2.83 |
13.22 ± 2.29 |
The number of PARP positive cells (
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| Sham-operation group | 5 | 4.34 ± 1.24 | 3.72 ± 1.18 | 3.28 ± 1.16 |
| Control group | 5 | 34.25 ± 4.21 |
31.75 ± 3.70 |
27.50 ± 3.29 |
| Treatment group | 5 | 16.00 ± 2.16 |
15.00 ± 2.58 |
12.20 ± 1.92 |
The concentration in brain tissue of caspase-3 and PARP (
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| Control group | 5 | 12.35 ± 2.21 | 12.24 ± 2.23 |
| Treatment group | 5 | 54.23 ± 7.22 |
48.12 ± 5.17 |
| Sham-operation group | 5 | 30.45 ± 4.44 |
28.36 ± 3.62 |