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Yi Tian

Publications and source records attributed to Yi Tian.

At least 19 recordsLinked to original sources

Multi-omics reveals that burdock seed aglycone alleviates renal fibrosis by restoring mitochondrial oxidative phosphorylation function.

Renal fibrosis (RF), a common pathological process driving chronic kidney disease (CKD) progression to end-stage renal failure, is closely associated with oxidative phosphorylation (OXPHOS). Arctigenin (ATG), the main active component of burdock seed, exhibits anti-inflammatory and anti-fibrotic activities, but its mechanisms in RF treatment remain unclear. Here, we performed integrated transcriptomic and proteomic analyses to identify key targets and pathways of ATG in a unilateral ureteral obstruction-induced rat RF model. Multi-omics enrichment analysis revealed that NDUFS8 and NDUFS2 were the core targets of ATG, with the OXPHOS pathway as the central intersecting pathway. Our results suggest that ATG exerts anti-renal fibrosis effects by targeting the OXPHOS pathway to inhibit excessive reactive oxygen species production and oxidative stress. SIGNIFICANCE: Chronic kidney disease (CKD) continues to impose an escalating global health and socioeconomic burden, while renal fibrosis (RF), as the convergent pathological endpoint of virtually all progressive nephropathies, remains the principal determinant of irreversible renal failure and adverse clinical outcomes. Despite extensive efforts to develop antifibrotic therapies, effective clinical interventions remain elusive, largely due to the complex and multifactorial nature of RF pathogenesis. In this study, we employed an integrated multi-omics framework encompassing transcriptomics, proteomics, and metabolomics to systematically decipher the antifibrotic mechanism of arctigenin (ATG), a bioactive natural compound derived from traditional Chinese medicine. Our findings identify mitochondrial oxidative phosphorylation as the pivotal regulatory axis underlying the renoprotective effects of ATG and further establish key catalytic subunits of mitochondrial complex I as its direct molecular targets. Mechanistically, ATG not only restores complex I activity and reprograms mitochondrial energy metabolism but also preserves the intracellular stability and localization of these subunits, thereby preventing their aberrant release-mediated inflammatory activation and disrupting the self-perpetuating cycle linking metabolic dysfunction, inflammation, and fibrosis progression. Beyond revealing a previously unrecognized dual mechanism integrating metabolic and inflammatory regulation, this study provides compelling evidence that mitochondrial dysfunction is not merely a secondary consequence of tissue injury but a fundamental driver of fibrotic remodeling. Importantly, our work highlights the translational potential of natural product-based mitochondrial interventions for CKD treatment and supports a broader conceptual shift toward metabolism-centered therapeutic strategies for chronic fibrotic diseases. Given the central role of mitochondrial dysfunction across multiple organs, these findings may also have far-reaching implications for the treatment of systemic fibrosis-related disorders beyond the kidney.

Animals↗

Heterosis of haemolymph analytes of two geographic populations in Chinese shrimp Fenneropenaeus chinensis.

Fenneropenaeus chinensis is distributed along the coasts of the northern seacoast of China and the Korean Peninsula. According to their migration routes, spawning and overwintering places, F. chinensis is divided mainly into three geographic variety populations. These populations represent potentially different genetic resources important to hybridisation breeding programs. To evaluate heterosis of the total protein concentration (PC), haemocyanin concentration (HC), penoloxidase (PO) activity, acid phosphatase (ACP) activity, alkaline phosphatase (ALP) activity and antimicrobial activity (Ua) mating was produced between and within Yellow and Bo sea (YB) population and southern seacoast of Korean Peninsula (SK) population, and the offspring of 49 families was reared to 7.64 g in the controlled environment. The results showed that the content of all haemolymph analytes of SK population was higher than that of YB population, and the immunocompetence in all hybridisations were higher than that in YB male x YB female except of HC in YB male x SK female. Nine of 12 hybridisations had manifested positive heterosis in six haemolymph analytes. Heterosis of SK x YB was all-positive, and this hybridisation was better than YB x SK in HC, PO, ALP activity and Ua. The results suggested that the haemolymph analytes of YB and SK populations had many genetic differences, and hybridisation was an important tool to increase immune reaction and adverse resistance.

Acid Phosphatase↗

[Beneficial effects of carvedilol on cardiomyocyte apoptosis and bcl-2/bax expression after acute myocardial infarction an experiment with rats].

OBJECTIVE: To investigate the beneficial effects of carvedilol on cardiomyocyte apoptosis and related gene expression after acute myocardial infarction (AMI). METHODS: Eighty-three female SD rats underwent ligation of left anterior descending coronary artery, and were randomly assigned to 2 groups 24 hours later: carvedilol (n = 40, 10 mg.kg(-1).d(-1)was administered via direct gastric gavage 24 hs after the ligation, Group C) and AMI control group (n = 43, normal saline of the same volume was given by gastric gavage, Group MI). Another 27 rats were used as sham operation group (Group S, administered with normal saline too). The rats of each group were killed and their hearts were taken out 48 hours and 4 weeks after observation respectively (MI-48 h, MI-4 week, C-48 h, C-4 week, S-48 h, and S-4 week subgroups). TUNEL and DNA gel electrophoresis were used to detect the cardiomyocyte apoptosis. Immunohistochemistry and Western blotting were used to detect the expression of bcl-2 and bax. RESULTS: The apoptotic indices of the infracted/scar, border and non-infarcted areas at any time-point of Group MI were all significantly higher than those of Group S (all P < 0.05). Only the apoptotic indices of the infracted/scar and border areas of the C-4 week subgroup were significantly lower than those of the MI-4 week subgroup (both P < 0.05), and were close to those of the non-infarcted area. DNA gel electrophoresis showed that the positive rate of Group S at any time-point were both 0, the positive rate of MI-48 h subgroup and C-48 h subgroup were both significantly higher than that of Group S (both P < 0.05) without significant difference between these 2 groups, and the positive rates of the MI-4 week subgroup and C-4 week subgroup were both 0. Immunohistochemistry showed that the bax gene expression was slightly to significantly increased in the infarcted/scar, border, and non-infarcted areas of the MI-48 h and MI-4 week subgroups. The bcl-2 expression was significantly increased only in the infracted area of the MI-48 h subgroup. The bcl-2 expression was slightly increased in the infracted and border areas of the C-48 h subgroup and the bax expression was significantly decreased in the infracted/scar area of the C-4 week subgroup. Western blotting showed that (1) the bcl-2 expression of the S-4 week subgroup was significantly higher than that of the S-48 h subgroup (P < 0.05), (2) the bcl-2 expression and bax expression of the MI-48 h subgroup were significantly higher than that of the S-48 h subgroup (P < 0.05 - 0.01), the bcl-2/bax ratio of the MI-48 h subgroup was significantly lower that that of the S-48 h subgroup, however, there were no significant differences in the bcl-2 and bax expression and bcl-2/bax ratio between the MI-4 week subgroup and S-48 h subgroup (all P > 0.05), and (3) There were no significant difference in the bcl-2 and bax expression between Group A and Group S (all P > 0.05), however, the bcl-2/bax ratios at the 2 time-points of Group C were both significantly higher than those of Group MI. CONCLUSION: Cardiomyocyte apoptosis occurs in the infarction/scar, border and non-infarcted areas after AMI. Prolonged treatment with carvedilol reduces cardiomyocyte apoptosis in the scar and border areas and increases the expression ratio of bcl-2/bax.

Adrenergic beta-Antagonists↗

[Effects of atenolol and metoprolol on cardiomyocyte apoptosis and related gene expression after acute myocardial infarction in rats].

OBJECTIVE: To compare the beneficial effects of Atenolol and Metoprolol on cardiomyocyte apoptosis and related gene expressions after acute myocardial infarction (AMI) in rats. METHODS: AMI model was established with the ligation of anterior descending coronary artery in 251 randomly selected female SD rats. Twenty-four hours after operation, the 124 survivors were randomly assigned to AMI control group (MI group, n = 43), Atenolol group (group A, 10 mg x kg(-1) d(-1), n = 39), and Metoprolol group (group B, 20 mg x kg(-1) x d(-1), n = 42). Sham operation group (group S, n = 27) was also established. Two subgroup (48 h subgroup and 4 weeks subgroup) was randomly divided in each group according to the time points. Drugs were given to each treatment group by gastric gavage 24 h after ligation. Cardiomyocyte apoptosis was detected with terminal deoxynucleotidyl transferase biotin-dUTP nick end labeling (TUNEL) and DNA ladder. Bcl-2, bax and caspase-3 genes were detected with immunohistochemistry and Western blot analysis. RESULTS: Compared with AMI control group, myocyte apoptosis rate (MAR) significantly decreased only in infarction area (P < 0.01) in group B. Bcl-2 expression was found to increase in myocytes of infarction, border and non-infarcted areas except for non-infarcted area of group A. Changes of the expressions of bax and caspase-3 was not significant. Four weeks after AMI, MAR was found to decrease significantly in scar, border and non-infarcted areas (P < 0.05, P < 0.01) in both group A and group B. No significant changes of bcl-2, bax and caspase-3 expressions was found except for a significant decrease of bax expression in non-infarcted area of group A. As indicated by Western blot, no significant change of the expressions of caspase-3, bcl-2 and bax were found in myocytes of group A and group B compared with AMI control group; however, bcl-2/bax ratio significantly increased to the same level of sham-operated group (P < 0.05). CONCLUSION: Both Atenolol and Metoprolol treatment can reduce cardiomyocyte apoptosis in infarction/scar, border and non-infarcted areas after AMI, mainly through the increase of bcl-2 expression and bcl-2/bax ratio.

Adrenergic beta-Antagonists↗

[Effects of anti-platelet drugs on myocardial no-reflow after acute myocardial infarction and reperfusion: experiment with mini-swine model].

OBJECTIVE: To evaluate the effects of anti-platelet drugs on myocardial no-reflow after acute myocardial infarction (AMI) and reperfusion. METHODS: Thirty-two mini-swine were randomized into 4 equal groups: Control Group, without any intervention; Group A approximately C, pretreated with aspirin-clopidogrel (A-C) combination (300 mg loading dose followed by 75 mg per day of clopidogrel and 10 mg x kg(-1) x d(-1) of aspirin for 3 days), Group Tirofiban, given an intravenous infusion of tirofiban (15 microg/kg in intravenous bolus followed by 0.5 microg x kg(-1) x min(-1) in continuous intravenous infusion from 30 min before occlusion to the end of protocol; and Sham Operation Group, undergoing sham operation. The former 3 groups underwent three-hour occlusion of the left anterior descending (LAD) coronary artery followed by one-hour reperfusion Before the adminisfration of drngs and hefore lipation of LAD flood sanpks were collocfed to detoif the platelet aggregation rate (PAR). Hemodynamic examination and myocardial contrast echocardiography (MCE) were performed before AMI, 3 h after AMI, and 1 h after reperfusion. The coronary ligation area (LA) and area of no-reflow (ANR) were determined with both MCE in vivo and pathological examination after the swine were killed. RESULTS: The platelet aggregation rates (MAR) after AMI were 46.8% and 45.7% respectively in tirofiban group and A-C Combination group, and significantly decreased to 12.9% and 14.3% respectively after the administration of drugs (both P < 0.01) with equivalent potency (P > 0.05). The left ventricular function was significantly improved in tirofiban group in comparison with control group (P < 0.05 - 0.01), the coronary blood flow volume (CBV) 1 h after reperfusion was 73.2% in tirofiban group, significantly higher than that of control group (45.8%, P < 0.01), and the ANR of tirofiban group was 22.8% and 23.2% judged by MCE and pathological examination respectively, both significantly smaller than those of control group (78.5% and 82.3%, both P < 0.01), and the NA of tirofiban group was 89.2%, significantly smaller than that of Control Group (98.5%, P < 0.05). However, there were not significant differences in left ventricular function, central blood volume, ANR and NA between A-C combination group and control group (all P > 0.05). CONCLUSION: Tirofiban is markedly effective in attenuating myocardial no-reflow after reperfusion; in contrast, A-C combination is totally ineffective.

Animals↗

[Beneficial effects of Tong-xin-luo (herb) on myocardial no-reflow after acute myocardial infarction and reperfusion: experiment of mini-swine model].

OBJECTIVE: To evaluate the beneficial effects of Tong-xin-luo on myocardial no-reflow after acute myocardial infarction (AMI) and reperfusion. METHODS: Forty mini-swine were randomized into 5 equal groups: control group, low-dose group (pretreated with Tong-xin-luo 0.05 g.kg(-1).d(-1) for 3 days), medium-dose group (pretreated with Tong-xin-luo 0.2 g .kg(-1).d(-1) for 3 days), high-dose group (pretreated with Tong-xin-luo 0.5 g.kg(-1).d(-1) for 3 days), and sham-operation group. The swine in the former four groups were subjected to 3 hours of coronary occlusion followed by 60 minutes of reperfusion. Left ventricle systolic pressure (LVSP), left ventricle end diastolic pressure (LVEDP), rate of maximum pressure change in left ventricle (+/- dp/dt(max)), cardiac output (CO), and heart rate (HR) were measured 5 min before AMI in all groups and 180 min after AMI and 60 min after reperfusion in the groups 1-4. Coronary blood volume (CBV) was recorded 5 min before AMI in all groups and immediately and 60 min after reperfusion in the group 1-4. Myocardial contrast echography (MCE) was used before AMI, 3 h after AMI, and 60 min after reperfusion in the group 1-4 so as to calculate the left ventricle wall area (LVWA), ligation area (LS), and %LA. Sixty minutes after reperfusion thioflavin-S was injected into the left ventricle to dye the reperfusion area, then the descending anterior branch was re-ligated at the original site and Evan's blue was injected into the left ventricle to dye the area outside the reperfusion area blue. The heart was taken out immediately to undergo pathological examination and calculation of LVWA, LS, area of no-reflow (SNR), LA, ANR. necrosis area (NS), and NA. RESULTS: (1) In the control group, systolic and diastolic blood pressures (SBP and DBP), LVSP, +/- dp/dt(max), and CO significantly decreased (P < 0.05 or P < 0.01), while LVEDP significantly increased (P < 0.01) 3 hour after AMI, and then LVSP was significantly recovered while +/- dp/dt(max) further significantly decreased (both P < 0.05) 60 minutes after reperfusion. In the 3 Tongxinluo groups, the changes of LVSP, +/- dp/dt(max), CO and LVEDP were the same as those in the control group 3 hours after AMI, and 60 minutes after reperfusion, +/- dp/dt(max), CO and LVEDP were recovered significantly in the high-dose group to degrees better than those in the control group (all P < 0.05). (2) In the control group, the LS values measured by MCE in vivo and by pathological evaluation were similar (P > 0.05), and the SNR was 78.5% by MCE in vivo and was 82.3% by pathological evaluation with the final NS reaching 98.5% of LS. There was no significant difference in LS by both MCE and pathological evaluation between the Tongxinluo groups and control group, though the values of SNR by both methods in the medium and high-dose groups were 41.1% and 42.4% and 24.1% and 25.0% respectively, all significantly lower than those in the control group and low-dose group (P < 0.05 or P < 0.01) with the values in the high-dose group being significantly lower than those in the median-dose group (P < 0.05 and P < 0.01). The final NS of pathological evaluation was also significantly decreased to 90.2%and 81.2% of LS (P < 0.05). In the control group, CBV was significantly decreased to 45.8% and 50.6% of the baseline value immediately at the beginning of reperfusion and 60 minutes after reperfusion (both P < 0.01). In the high-dose group, CBV was also significantly decreased to 76% and 73.5% of the baseline value immediately at the beginning of reperfusion and 60 minutes after reperfusion (both P < 0.05), however, both significantly higher than those in the control group (both P < 0.01). CONCLUSION: Tongxinluo is effective in preventing myocardial no-reflow, improving left ventricular function and reducing infarct area during AMI and reperfusion.

Animals↗

[Beneficial effects of diltiazem on myocardial no-reflow in a mini-swine model of acute myocardial infarction and reperfusion].

OBJECTIVE: To evaluate the beneficial effects of diltiazem on myocardial no-reflow. METHODS: Twenty-four mini-swine were randomized into 3 equal groups: diltiazem-treated group subjected to 3 hours of coronary occlusion to cause acute myocardial infarction (AMI), followed by 60 minutes of reperfusion and injected with diltiazem into the coronary artery 1 minute before reperfusion, control group undergoing coronary occlusion followed by 60 minutes of reperfusion and injected with normal saline, and sham operation group. 5 minutes before AMI in all groups and 180 minutes after AMI and 60 minutes after re-perfusion in the diltiazem and control groups, hemodynamic data, such as heart rate (HR), left ventricular systolic pressure (LVSP). Left ventricular end diastolic pressure (LVEDP), +/- dp/dt(max), cardiac output (CO), and coronary blood volume (CBV) were measured. Myocardial contrast echography (MCE) was used to measure the left ventricle wall area (LVWA) and ligation area (LA) so as to calculate LA and to measure the area of no-reflow (ANR) so as to calculate ANR. 60 minutes after reperfusion thioflavin-S was injected into left ventricle so as to color the reperfused area and then the descending anterior branch was re-ligated and Evan's blue was injected into the left ventricle to color the area outside the ligation area. The heart was taken out to undergo histological examination. RESULTS: (1) In comparison with the values before AMI the LVSP, +/- dp/dt(max), and CO of the control group significantly declined (P < 0.05, 0.01), while the LVEDP significantly increased (P < 0.01) by the end of 3 hours after LAD occlusion; and the LVSP significantly increased and the +/- dp/dt(max) further significantly declined (both P < 0.05) 60 minutes after reperfusion. In the diltiazem group, the changes of LVSP, +/- dp/dt(max), CO, and LVEDP were the same as those in the control group after 3 hours of AMI, while the +/- dp/dt(max), CO, and LVEDP recovered significantly, more significantly than those in the control group, 60 minutes after reperfusion (all P < 0.05). (2) In the control group, the sizes of coronary ligation area (LA) measured by both MCE in vivo and histopathological evaluation were similar (P > 0.05), and the values of area of no-reflow (ANR) measured by MCE in vivo and histopathological evaluation were 78.5% and 82.3% respectively with the final necrosis area (NA) reaching 99% of the LA. There was no significant difference in LA measured by both MCE and histopathological evaluation between the control and diltiazem groups, while the values of ANR measured by both methods was significantly decreased to 19.9% and 20.6% that before AMI respectively in the diltiazem group (both P < 0.01). There was no significant difference in NA between the control and diltiazem groups (P > 0.05). The CBV of the control group was significantly declined to 45.8% and 50.6% of the baseline value respectively immediately and 60 minutes after reperfusion (both P < 0.01), while the CBV of the diltiazem group became 80.4% and 79.3% of the baseline value respectively immediately and 60 minutes after reperfusion (both P < 0.05), both significantly higher than those of the control group (both P < 0.01). CONCLUSION: Diltiazem is effective both in preventing myocardial no-reflow and improving left ventricular function, but not in reducing MI size during AMI and reperfusion.

Animals↗

[Comparison of doxycycline, losartan, and their combination on the expression of matrix metalloproteinase, tissue inhibitor of matrix metalloproteinase, and collagen remodeling in the noninfarcted myocardium after acute myocardial infarction in rats].

OBJECTIVE: To compare the effects of matrix metalloproteinase (MMP) inhibitor doxycycline, losartan, and their combination on the expression of MMP-8, 13, tissue inhibitor of MMP-1, 2 (TIMP-1, 2), and collagen remodeling in the noninfarcted myocardium after acute myocardial infarction (AMI) in rats. METHODS: Two hundred and fifty-four AMI rats, induced by left coronary ligation, were randomly assigned to the following groups: (1) AMI controls group (n = 64); (2) doxycycline group (30 mg x kg(-1) x d(-1), n = 63); (3) losartan group (10 mg x kg(-1) x d(-1), n = 62); (4) concomitant doxycycline and losartan group (30 and 10 mg x kg(-1) x d(-1) respectively, n = 65); and (5) Sham-operated rats (n = 30), which were randomly selected to serve as noninfarction controls. Each group was further divided into three subgroups of 1, 2, and 4 weeks that received treatment. After the completion of treatment, the rats were killed. The mRNA and protein expression of MMPs and TIMPs in the noninfarcted myocardium were quantified by RT-PCR and Western blot, respectively. The type I and type III collagen volume fraction (CVF) of the noninfarced myocardium were assessed immunohistochemically. RESULTS: No significant difference existed in myocardial infarction sizes among the 12 subgroups of AMI controls and the three treatment groups (42%-48%, all P > 0.05). Compared with sham operated rats, the mRNA and protein expression of MMP-8 and 13 significantly increased by 39%-183% in all three subgroups of AMI controls (all P < 0.05), except both of their mRNA expressions in 2-week subgroups; the mRNA and protein levels of TIMP-1 increased only in 1-week subgroup of AMI controls by 104% and 67%, respectively (both P < 0.05); the mRNA of TIMP-2 increased in all 1, 2, and 4-week subgroups by 144%-232% (all P < 0.05), but its protein expression lagged and only enhanced in 2 and 4-week subgroups of AMI controls by 231% and 332%, respectively (both P < 0.05). Meanwhile, both type I and type III CVF of noninfarcted myocardium significantly increased in all three subgroups of AMI controls (type I CVF: 3.01%-5.64% vs 1.53%-1.67%, P < 0.01-0.001; type III CVF: 2.19%-4.42% vs 1.46%-1.59%, P < 0.05-0.001), with type I CVF being higher in 4-week than in 1 and 2-week subgroups (5.64% vs 3.01% and 3.02% respectively, all P < 0.05). Compared with AMI controls, all three kinds of treatment significantly reduced the increased mRNA and protein expressions of MMP-8, 13 and TIMP-1, 2 after AMI by 14%-60% (all P < 0.05), as well as type I/III CVF in their 2 and 4-week subgroups (type I CVF: 1.56%-2.38% vs 3.02%-5.64%, P < 0.05-0.001; type III CVF: 1.92%-2.65% vs 4.19%-4.42%, P < 0.05-0.01), except for doxycycline's effect on type III CVF in any of its three subgroups (all P > 0.05). Among the three treatment groups, significant differences existed in the above mentioned indicators only at some subgroup levels (all P < 0.05). CONCLUSIONS: Like losartan, doxycycline can also suppress the enhanced mRNA and protein expression of MMP-8, 13 and TIMP-1, 2, and reduce type I collagen deposition in the noninfarcted myocardium after AMI in rats. However, it has no effect on type III collagen deposition.

Angiotensin II Type 1 Receptor Blockers↗

[Beneficial effects of adenosine on myocardial no-reflow in a mini-swine model of acute myocardial infarction and reperfusion].

OBJECTIVE: To evaluate the beneficial effects of adenosine on myocardial no-reflow in a mini-swine model of acute myocardial infarction (AMI) and reperfusion. METHODS: Twenty-four animals were randomly assigned to 3 groups: 8 in controls, 8 in adenosine-treated and 8 in sham-operated. The groups were subjected to 3 hours of coronary occlusion followed by 60 minutes of reperfusion except the sham-operated group. Data on hemodynamics and coronary blood flow volume (CBV) were collected. The area of no-reflow was evaluated by both myocardial contrast echocardiography (MCE) in vivo and histopathological means and necrosis area was measured with triphenyltetrazolium chloride staining. RESULTS: (1) In control group, systolic and diastolic blood pressure (SBP and DBP), left ventricular systolic pressure, maximal rate of increase and decline in left ventricular pressure (+/- dp/dtmax) and cardiac output significantly declined (P < 0.05-0.01), while left ventricular end-diastolic pressure (LVEDP) and pulmonary capillary wedge pressure (PCWP) significantly increased at the end of 3 hours of LAD occlusion (both P < 0.01), with +/- dp/dtmax further significantly declined (both P < 0.05) at 60 minutes of reperfusion. In adenosine treated group, the changes of SBP and DBP, left ventricular systolic pressure, +/- dp/dtmax, cardiac output, LVEDP and PCWP were the same as those in the control group after AMI and reperfusion, while left ventricular systolic pressure, +/- dp/dtmax, cardiac output, LVEDP and PCWP recovered significantly at 60 minutes of reperfusion compared with those at 6 hours AMI. (2) In control group, the coronary ligation areas (LA) were similar (P > 0.05) detected by MCE in vivo and histopathological evaluation, and the areas of no-reflow were both as high as 67.5% and 69.3%, respectively. The final necrosis area reached 99% of LA. Compared with those in the control group, there was no significant difference in LA on both MCE and histopathological evaluation in the adenosine-treated group, though the areas of no-reflow on both methods were significantly decreased to 21% and 22% (both P < 0.01) and final necrosis area was also significantly decreased to 75% of LA (P < 0.05). (3) In the control group, CBV were significantly declined to 45.8% and 50.6% of the baseline at immediately after release of 3 hours occlusion and at 60 minutes of reperfusion, respectively (both P < 0.01). In the adenosine-treated group, CBV were also significantly declined at immediately after release of 3 hours occlusion, and at 60 minutes of reperfusion (both P < 0.05), though significantly increased to 79.5% and 79.9% of the baseline which were both significantly higher than those in the control group. CONCLUSION: Adenosine has an effective role in preventing myocardial no-reflow, improving left ventricular function and reducing infarct area during AMI and reperfusion in mini-swine.

Adenosine↗

[Polymorphism Analysis of the CSN1S2 Gene Digested.].

PCR-RFLP was applied to analyze the polymorphism of CSN1S2 gene in 170 goats that comprised of five goat breeds, namely Xinong Saanen dairy goat, Guanzhong dairy goat, Shaannan white goat, Angora goat and Boer goat. A 310 bp -long PCR product was digested with Alw26I and demonstrated polymorphism in five goat populations that were all at Hardy-Weinberg equilibrium (P>0.05). For Xinong Saanen dairy goat, Guanzhong dairy goat, Shaannan white goat, Angora goat and Boer goat, gene heterozygosity/effective allele gene number/Shaanon information entropy /Polymorphism information content were 0.1589/1.1889/0.2955/0.1463, 0.4114/1.6981/0.6017/0.5171, 0.1653/1.1980/0.3046/0.1516, 0646/1.0691/0.1463/ 0.0625, 0.0541/1.0572/0.1270/ 0.0526, respectively. According to the heredity diversity indexes described above of the five goat breeds, Guanzhong dairy goat had the most abundant heredity diversity and showed high polymorphism, and Xinong Saanen dairy goat and Shaannan white goat were inferior, while Angora goat and Boer goat had the lowest genetic variability.

Alleles↗

[Beneficial effects of nicorandil on myocardial no-reflow state in a mini-swine model of acute myocardial infarction and reperfusion].

OBJECTIVE: To evaluate the effects of nicorandil on myocardial no-reflow state in a mini-swine model of acute myocardial infarction (AMI) and reperfusion. METHODS: Twenty-four mini-swine were randomly divided into three study groups: 8 in control group, 8 in nicorandil-treatment group, and 8 in sham-operated group. Animals in the former two groups were subjected to 3 hours of coronary occlusion followed by 1 hour of reperfusion. Hemodynamics and coronary blood flow volume (CBV) were monitored, and the area of no-reflow (ANR) was evaluated with both myocardial contrast echocardiography (MCE) in vivo and pathological means. Necrosis area (NA) was measured with triphenyltetrazolium chloride (TTC) staining. RESULTS: (1)In control group, left ventricular systolic pressure (LVSP), the maximum change rate of left ventricular pressure rise and fall (+/-dp/dt max) and cardiac output (CO) significantly declined, while left ventricular end-diastolic pressure (LVEDP) significantly increased at the end of 3 hours of LAD occlusion compared to that prior to AMI (P<0.05 or P<0.01), and +/-dp/dt max further significantly declined, while LVSP significantly rose (all P<0.05) at 1 hour of reperfusion. In the nicorandil-treatment group, the changes of LVSP, +/-dp/dt max, CO and LVEDP were the same as those in the control group after 3 hours of AMI. In contrast, LVSP, +/-dp/dt max, CO and LVEDP significantly elevated at 1 hour of reperfusion, and the changes were more significant compared to those of the control group (all P<0.05). (2)In control group, the vascular area after coronary ligation (LA) as determined by MCE in vivo was consistent with that of pathological evaluation(P>0.05), and the range of ANR (ANR%) was also similar [(78.50+/-4.35)% and (82.30+/-1.90)% respectively], with final range of NA (NA%) reaching (98.50+/-1.35% of LA. In the nicorandil-treatment group, there was no significant difference in the range of LA (LA%) for both MCE and pathological evaluation (P>0.05), which were also not significantly different from those in control group, while ANR% and NA% significantly decreased (P<0.05 or P<0.01). (3)In the control group, CBV was significantly declined to 50.6% and 45.8% of the baseline immediately after release of 3 hours occlusion and at 1 hour of reperfusion (both P<0.01). In the nicorandil-treatment group, CBV was also significantly declined immediately after release of 3-hour occlusion, and at 1 hour of reperfusion (both P<0.05), though it was significantly increased to 69.4% and 67.9% of the baseline, and they were both significantly higher than those in the control group (both P<0.01). CONCLUSION: Nicorandil is effective in preventing myocardial no-reflow, improving left ventricular function and reducing infarct area after coronary artery occlusion and reperfusion in mini-swine.

Animals↗

[Beneficial effects of fosinopril on myocardial no-reflow in a mini-swine model of acute myocardial infarction and reperfusion].

OBJECTIVE: To evaluate the effects of fosinopril on myocardial no-reflow in a mini-swine model of acute myocardial infarction and reperfusion. METHODS: Twenty-four mini-swines were randomized into 3 study groups: 8 in control group, 8 in fosinopril-treated group (1 mg.kg(-1).d(-1)) and 8 in sham-operated group. Animals in the former two groups were subjected to 3 hours of coronary occlusion followed by 60 minutes of reperfusion. Data on haemodynamics and coronary blood flow volume (CBV) were collected, and the area of no-reflow was evaluated with both myocardial contrast echocardiography (MCE) in vivo and pathological means. Necrosis area was measured with triphenyltetrazolium chloride (TTC) staining. RESULTS: (1) In the control group, systolic and diastolic blood pressure (SBP and DBP), left ventricular systolic pressure (LVSP), maximal rate of increase and decrease in left ventricular pressure (+/- dp/dt(max)) and cardiac output (CO) significantly declined (P < 0.05-0.01), while left ventricular end-diastolic pressure (LVEDP) and pulmonary capillary wedge pressure (PCWP) significantly increased at the end of 3 hours occlusion of left anterior descending artery (both P < 0.01). Compared with those at the end of 3 hours of occlusion, +/- dp/dt(max) further significantly declined (P < 0.05) at 60 minutes of reperfusion. In the fosinopril group, the changes of SBP and DBP, LVSP, +/- dp/dt(max), CO, LVEDP and PCWP were similar as those in the control group after 3 hours of acute myocardial infarction. In contrast, LVSP, +/- dp/dt(max), CO, LVEDP and PCWP recovered significantly at 60 minutes of reperfusion. (2) In the control group, the coronary ligation area was similar on both MCE in vivo and pathological evaluation, and the area of no-reflow was similarly as high as 78.5% and 82.3%, respectively, with final necrosis area reaching 99% of ligation area. In the fosinopril group, there was no significant difference in ligation area on both MCE and pathological evaluations between the fosinopril and control groups, although the area of no-reflow on both methods was significantly decreased to 24.5% and 25.2%, respectively, (P < 0.01) with final necrosis area of pathological evaluation being also significantly decreased to 88.9% of LA (P < 0.05). (3) In the control group, CBV was significantly declined to 45.8% and 50.6% from at baseline, immediately after release of occlusion (3 hours) and at 60 minutes of reperfusion (P < 0.01). In the fosinopril group, CBV was also significantly declined immediately after release of occlusion (3 hours), and at 60 minutes of reperfusion (P < 0.05), but significantly increased to 69.1% and 72.1% from at baseline, that were significantly greater than those in the control group (both P < 0.01). CONCLUSION: Fosinopril is effective in preventing myocardial no-reflow, improving left ventricular function, and reducing infarct area during acute myocardial infarction and reperfusion in mini-swine.

Animals↗

[Comparison of doxycycline, losartan, and their combination in the prevention of post-infarction remodeling in rats].

OBJECTIVE: To compare the effects of doxycycline, losartan, and their combination in the prevention of left ventricular remodeling (LVRM) after acute myocardial infarction (AMI) in rats. METHODS: Twenty-four hours after the induction of AMI, the 254 survival rats were randomly assigned to the following groups and received drug treatment: (1) AMI controls (n=64), (2) doxycycline (30 mg x kg(-1) x d(-1), n = 63), (3) losartan (10 mg x kg(-1) x d(-1), n = 62), and (4) combination doxycycline and losartan (30 and 10 mg x kg(-1) x d(-1) respectively, n = 65) treatment groups. Also, sham operated rats (n = 30) were selected randomly. Each group was further divided into three subgroups of 1, 2, and 4 weeks of treatment. After the completion of treatment, hemodynamic studies were performed. Then, the heart of rat was fixed and analyzed pathologically. RESULTS: Exclusive of the dead rats and the hearts with the myocardial infarction size < 35% or > 50%, complete experimental data were obtained in 157 rats. Besides sham operated rats, there was no significant difference in myocardial infarction sizes among the 12 subgroups of AMI control and drug treatment groups (P> 0.05). Compared with sham operated rats, left ventricular end diastolic pressure (LVEDP) and left ventricular absolute weight and relative weight (LVAW and LVRW) were significantly increased in 1, 2, and 4 week subgroups of AMI controls (P < 0.05, P < 0.01, and P < 0.001, respectively), with LVEDP elevated more significantly in 4 week than in 1 and 2 week subgroups (P < 0.01); whereas the maximum rising and dropping rate of left ventricular pressure (+/-dp/dt) and its corrected value by left ventricular systolic pressure (+/-dp/dt/LVSP) were all significantly decreased only at 4 week subgroup of AMI controls (P < 0.001). Compared with AMI controls group, LVEDP was significantly decreased in all 1, 2, and 4 week subgroups of the three treatment groups (P < 0.05, P < 0.01, and P < 0.001, respectively); LVAW and LVRW were significantly decreased in 2 and 4 week subgroups of losartan and combination groups (P < 0.05, P < 0.01, P < 0.001, respectively), and in only 4 week subgroup in doxycycline (P < 0.05, P < 0.01, and P < 0.001, respectively); whereas the maximum dropping rate of left ventricular pressure and the corrected value of left ventricular pressure rising and dropping rate were significantly increased only in 4 week subgroups of all three treatment groups (P < 0.05, P < 0.01, respectively). There is no significant difference in all indices above among the three treatment groups at all three time points (P > 0.05). CONCLUSION: It is indicated that doxycycline can prevent left ventricular remodeling and improve its systolic and diastolic function after AMI in rats, with the equivalent effect to that of losartan. There seems no additive effect when the two drugs are used in combination.

Angiotensin II Type 1 Receptor Blockers↗

[Beneficial effects of ischemic preconditioning on myocardial no-reflow in a mini-swine model of acute myocardial infarction and reperfusion].

OBJECTIVE: To evaluate the effects of ischemic preconditioning (IPC) on myocardial no-reflow in a mini-swine model of acute myocardial infarction (AMI) and reperfusion. METHODS: Twenty-four mini-swines were randomized into 3 study groups: 8 in control, 8 in IPC and 8 in sham-operated. Animals in the former two groups were subjected to 3 hours of coronary occlusion followed by 1 hour of reperfusion. Data on hemodynamics and coronary blood flow volume (CBV) were collected, and the area of no-reflow (ANR) was evaluated with both myocardial contrast echocardiography (MCE) in vivo and pathological means. Necrosis area (NA) was measured with triphenyltetrazolium chloride (TTC) staining. RESULTS: In control group, left ventricular systolic pressure (LVSP), the maximum change rate of left ventricular pressure rise and fall (+/-dp/dtmax) and cardiac output (CO) significantly declined (P < 0.05, P < 0.01), while left ventricular end-diastolic pressure (LVEDP) significantly increased at the end of 3 hours of left anterior descending coronary artery occlusion (both P < 0.01), with +/-dp/dtmax further significantly declined (both P <0.05) at 1 hour of reperfusion. In IPC group, LVSP, +/-dp/dtmax, CO and LVEDP significantly recovered at 1 hour of reperfusion, compared with those in control group. In IPC group, the coronary ligation area was similar on both MCE in vivo and pathological evaluation (P > 0.05), and ANR was both also similarly as high as (16.4 +/- 2.24) % and (17.5 +/- 2.87) %, respectively, with final necrosis area (NA) reaching (78.4 +/- 3.62) %. In IPC group, ANR and final NA were significantly lower than those in control group (P < 0.05, P < 0.01). In the control group, coronary blood flow volumn immediately after release of 3 hours occlusion and at 1 hour of reperfusion were significantly lower than the baseline (both P < 0.01). In IPC group, coronary blood flow volumn were significantly higher than those in the control group (both P < 0.01). CONCLUSION: IPC is effective to prevent myocardial no-reflow, improve left ventricular function and decrease infarct area.

Animals↗

[Growth and differentiation of adult canine autologous skeletal myoblasts after transplanted into acute myocardial infarction region].

OBJECTIVE: To study the growth and differentiation of adult canine autologous skeletal myoblasts after being transplanted into acute myocardial infarction (AMI) region by intramyocardium injection (IMI) and intracoronary infusion (ICI). METHODS: Autologous skeletal myoblasts were procured by a modified method. AMI model of adult canine was obtained through left anterior descending branch ligation and was divided into 4 groups (n = 5 for each group). Autologous skeletal myoblasts (1.0 - 1.4 x 10(8) cells) were injected locally into AMI region or infused into infarction-related coronary artery. Specimens were harvested 4 weeks after cellular transplantation for histological study including HE, PTH, immunochemical stain and transmission electronmicroscope. RESULTS: In both two transplantation groups, newborn muscle-derived cells, striated muscle tissue and mature skeletal myofibril were demonstrated existing in MI region by electronmicroscope, PTH stain or anti-skeletal myosin heavy chain (slow) immunochemical stain, respectively. Newborn striated muscle tissues arranged in order of consistency with host myocardial fibers in two treatment groups. Newborn striated muscle tissue was more inclined to gather in MI region in the local injection group but distracted from each other in the intracoronary infusion group. CONCLUSION: Autologous skeletal myoblasts appears to live and differentiate into mature striated muscle tissue after transplanting into AMI region by IMI or ICI routes.

Animals↗

[Effects of doxycycline on the expression of matrix metalloproteinase and tissue inhibitor of MMP in myocardium after acute myocardial infarction: an animal experiment with rats].

OBJECTIVE: To assess the effects of doxycycline, a matrix metalloproteinase (MMP) inhibitor, on the expression of MMP-8 and -13, and tissue inhibitor of MMP-1 and -2 (TIMP-1 and -2), and on collagen remodeling in the noninfarcted myocardium after acute myocardial infarction (AMI). METHODS: 212 female SD rats underwent ligation of left coronary artery so as to cause AMI. Twenty-four hours after the 127 surviving rats were randomly divided into 2 groups: AMI control group (n = 64) and AMI doxycycline treatment (30 mg.kg(-1).d(-1)) group (n = 63). Then the rats in these 2 groups were re-divided into 3 sub-groups of 18 approximately 24 rats according to the course of treatment: 1-week, 2-week, and 4-week subgroups. Thirty female SD rats underwent sham operation and then were re-divided into 3 groups of 10 rats: 1-week, 2-week, and 4-week subgroups. By the end of each course the rats were killed and their hearts were taken out. A piece of myocardium from the left ventricle was taken and stained with hematoxyline and eosin to examine the area of infarction. The mRNA expressions of MMP and TIMP in the non-infarcted myocardium were detected by RT-PCR. The protein expressions of MMP and TIMP in the non-infarcted myocardium were detected by Western blotting. The type I and type III collagen volume fraction (CVF) in the noninfarcted myocardium was examined by immunohistochemistry. RESULTS: There was no significant difference in the MI size among the 6 subgroups of AMI control and doxycycline groups (42% approximately 48%, all P > 0.05). Compared with sham operated rats, the mRNA expressions of MMP-8 and 13 were significantly increased by 54% approximately 183% in all three subgroups of AMI controls (all P < 0.05), and the mRNA expressions of MMP-8 and 13 in the 1-week and 4-week were significantly increased by 39% approximately 160% in these 3 subgroups (all P < 0.05). The mRNA and protein expressions of TIMP-1 were enhanced only in the 1-week subgroup of AMI controls by 104% and 67% respectively (both P < 0.05). The mRNA expression of TIMP-2 was significantly increased in all 1-, 2-, and 4-week subgroups by 144% approximately 232% (all P < 0.05), however, the protein expression of TIMP-2 was increased only in the 2- and 4-week subgroups of AMI control group by 231% and 332% respectively (both P < 0.05). Compared with the sham operation group, both the type I CVF and type III CVF of the noninfarcted myocardium were significantly increased in all three subgroups of the AMI control group (type I CVF: 3.01% approximately 5.64% vs 1.53% approximately 1.67%, P < 0.01 approximately 0.001; type III CVF: 2.19% approximately 4.42% vs 1.46% approximately 1.59%, P < 0.05 approximately 0.001), with type I CVF being higher in the 4-week subgroup than in the 1 and 2-week subgroups (5.64% vs 3.01% and 3.02% respectively, all P < 0.05). In comparison with the 3 subgroups of the AMI control group, the mRNA and protein expressions of MMP-8 and 13 and TIMP-1 and 2 after AMI in the doxycycline group were significantly lower by 14% approximately 51% (all P < 0.05). In comparison with that in the AMI control group, the type I collagen deposition in the doxycycline group was significantly lower 2 and 4 weeks after AMI (1.94% vs 3.02% and 1.97% vs 5.64% respectively, P < 0.01 approximately 0.001), however, there was no significant difference in type III CVF among the different subgroups (all P > 0.05). CONCLUSION: Doxycycline suppresses the enhanced mRNA and protein expressions of MMP-8 and 13 and TIMP-1 and 2, and type I collagen deposition in the noninfarcted myocardium after AMI, but it has no effect on type III collagen deposition.

Animals↗