Literature DB >> 29587770

Powdered black cumin seeds strongly improves serum lipids, atherogenic index of plasma and modulates anthropometric features in patients with Hashimoto's thyroiditis.

Mahdieh Abbasalizad Farhangi1,2, Parvin Dehghan3, Siroos Tajmiri4.   

Abstract

BACKGROUND: Hashimoto's thyroiditis is associated with serious alterations in serum lipids and glucose homeostasis. The aims of the current study were to evaluate the effect of powdered Nigella sativa on serum lipids, glucose homeostasis and anthropometric variables in patients with Hashimoto's thyroiditis.
METHODS: Forty patients with Hashimoto's thyroiditis, aged between 22 and 50 years old, participated in the trial and were randomly allocated into two groups of intervention and control receiving powdered Nigella sativa or placebo daily for 8 weeks. Serum lipids, glucose homeostasis, and anthropometric variables were evaluated at baseline and after intervention.
RESULTS: Treatment with Nigella sativa significantly reduced body weight and body mass index (BMI). Serum concentrations of low density lipoprotein cholesterol (LDL) and triglyceride (TG) also decreased in Nigella sativa-treated group after 8 weeks; while serum high density lipoprotein cholesterol (HDL) significantly increased after treatment with Nigella sativa (P < 0.05). None of these changes had been observed in placebo treated group. Serum Nesfatin-1 concentrations was in inverse relationship with serum triglyceride (TG) (r = - 0.31, P = 0.04).
CONCLUSIONS: Giving attention to the potent beneficial effects of powdered black cumin seeds in improving serum lipid profile and anthropometric features in patients with Hashimoto's thyroiditis, this medicinal plant could be considered as a beneficial herbal supplement alongside with the disease- specific medications including Levothyroxine in management of Hashimoto's thyroiditis- related metabolic abnormalities. TRIAL REGISTRATION: Iranian registry of clinical trials (registration number IRCT2014090819082N2 - Registered 2014-09-29).

Entities:  

Keywords:  Black cumin; Glucose homeostasis; Hashimoto’s thyroiditis; Lipid profile; Nigella sativa

Mesh:

Substances:

Year:  2018        PMID: 29587770      PMCID: PMC5870944          DOI: 10.1186/s12944-018-0704-x

Source DB:  PubMed          Journal:  Lipids Health Dis        ISSN: 1476-511X            Impact factor:   3.876


Background

Hashimoto’s thyroiditis (HT) is one of the most common human autoimmune diseases and an organ-specific T-cell mediated disease that affects the thyroid glands [1, 2]. The disease is ten times more prevalent in women than in men and affects 2% of general population [3, 4]. A significant proportion of patients have asymptomatic chronic autoimmune thyroiditis and 8% of woman (10% of woman over 55 years of age) and 3% of men have subclinical hypothyroidism [5]. Hashimoto’s thyroiditis is associated with serious alterations in composition and the transport of lipoproteins; Hypothyroidism is characterized by hyper-cholesterolaemia and a marked increase in low-density lipoproteins (LDL) and apo-lipoprotein B (apo B) because of reduced fractional clearance of LDL by a reduced number of LDL receptors in the liver [6, 7]. Dyslipidemia occurred in thyroid abnormalities is a potent risk factor of cardiovascular events and myocardial infarction among patients with abnormal thyroid function. Numerous studies revealed that hypothyroidism is an independent risk factor of mortality from cardiovascular disease and all-cause mortality [8, 9]. Moreover, Hashimoto’s thyroiditis is a risk factor of non-insulin dependent diabetes mellitus (NIDDM) and more often these two diseases are in co-existence with each other [10]. Up to 38% of patients with NIDDM have also Hashimoto’s thyroiditis [11]. Considering these metabolic abnormalities in Hashimoto’s thyroiditis, therapeutic approaches in treatment of the disease will be important. Levothyroxine sodium is the treatment of choice for Hashimoto’s thyroiditis however its chronic use is related with cardiac dysfunction, left ventricular hypertrophy [12, 13] and rapid bone loss [14].There are limited data evaluating the effects of vitamins or herbal medications in treatment of thyroid abnormalities [15] and no study was available evaluating the effects of herbal medications in treatment of Hashimoto’s thyroiditis in human. Nigella sativais an amazing herb with a rich historical and religious background; it is one of the medicinal plants and belongs to the Ranunculaceae family [16]. The seeds of the Nigella sativa are the source of the active ingredients of this plants; it has considerable health promoting effects including its antioxidant, anti-inflammatory and immune-modulatory properties [16]. Numerous studies have extensively studied therapeutic actions of Nigella sativa in treating the disease especially in animal models; while human studies in this filed are scarce [17-19]. Lipid- lowering effects of Nigella sativa had been studied in several human diseases including hypercholesterolemia [20], type two diabetes mellitus [21] and coronary artery disease [22]. However, to our review of literature, the effect of this herbal medicine on dyslipidemia or glycemic status and thyroid function among patients with Hashimoto’s thyroiditis has not been evaluated before; therefore in the current study we aimed to test these hypotheses.

Methods

Patients

In the current double-blinded placebo-controlled trial, forty patients with Hashimoto’s thyroiditis were enrolled (Fig. 1). Subjects were recruited from outpatient endocrinology and metabolism clinics of Isfahan University of Medical Sciences. Inclusion criteria were as follows: age between 20 and 50 years, having Hashimoto’s thyroiditis according to physician diagnosis based on laboratory analysis of thyroid stimulating hormone (TSH), T3, T4 and anti-thyroid peroxidase concentrations. Exclusion criteria were as follows: taking any nutritional supplements for at least 3 months prior participation or during the trial, any history of autoimmune disease, cardiovascular events, other thyroid abnormalities including Grave’s disease, being pregnant or lactating, any history of thyroid surgeries and being on any dietary regimens during and 3 months before recruitment in the trial.
Fig. 1

Flow diagram of subject recruitment

Flow diagram of subject recruitment

Study design

From one hundred recruited subjects, fifty three participants were excluded because of not meeting the inclusion criteria or decline to participate. Among forty seven patients random permuted block procedure was performed and participants were randomly allocated into Nigella sativa-treated (n = 24) or placebo-treated (n = 23) groups. Patients in the intervention group received a daily dose of 2 g Nigella sativa powder per day and placebo group received 2 g starches per day for 8 weeks. The mature Nigella sativa seeds were obtained from a local market and were milled in a grinder. Both Nigella sativa powder and placebo were identically packaged to have similar appearance. Subjects were advised to receive the supplement or placebo packages in two divided dosages with lunch and dinner. Randomization procedure was performed by a third investigator with no clinical involvement in the trial for ensure in blinding. A follow-up procedure was done with weekly telephone contacts to ensure that subjects consumed the supplements regularly. Written informed consent was obtained from all of the participants before participation in the trial and the study protocol was approved by the ethics committee of Tabriz University of Medical Sciences (Project number: 93173). The current trial was also registered in the Iranian Registry of Clinical Trials (Identifier: IRCT2014090819082N2) [23, 24].

Anthropometric and nutritional assessments

Body weight and height were measured with a calibrated digital scale and stadiometer respectively. BMI was calculated as weight (kg) divided by height (m) squared [25]. Waist circumference (WC) was measured in horizontal plane, midway between the lowest rib and the iliac crest with a measuring tape in centimeter. Waist to hip ratio (WHR) was calculated by WC divided by hip circumference (HC) [26]. The dietary assessments were performed using a 3-day food record, covering two weekdays and one weekend day, to estimate total energy, carbohydrate, protein, fat and vitamins consumption. Nutrient analysis of the 3-day food record was performed using the Nutritionist IV software (N-squared Computing, Salem, OR, USA).

Physical activity level

Physical activity was obtained by the questionnaire with nine different metabolic equivalent (MET) scales ranging from sleep/rest (0.9 METs) to high-intensity physical activities (> 6 METs). For each activity level, the MET value was multiplied by the time spent at that particular level. The MET-time at each level was added to obtain a total over 24 h MET-time, representing the physical activity level on an average weekday. Physical activities of different intensities were categorized to sedentary (< 3 METs), moderate (3–6 METs) and vigorous (> 6 METs) respectively [27].

Biochemical assays

Fasting blood samples were obtained from all of the participants at the beginning and end of the trail. The serum and plasma samples were separated by centrifugation at 2500 rpm for 10 min (Beckman Avanti J-25; Beckman Coulter, Brea, CA, USA) at room temperature. The serum samples were stored at − 70 °C immediately after centrifugation until their assays.Serum total cholesterol (TC), fasting serum glucose (FSG), triglyceride (TG), high density lipoprotein cholesterol (HDL-C) and low density lipoprotein cholesterol (LDL-C) were analyzed by enzymatic colorimetric method (Pars – Azmoon, Tehran – Iran). Serum insulin was analyzed with enzyme linked immunosorbent assay method (ELISA- Monobind Insulin AccuBind, CA 92630, USA). The Sensitivity of this assay was 0.75 μIU/ml and mean inter and intra assay coefficient of variations (CV) were < 9.8% and < 8% respectively. Atherogenic index of plasma (AIP) was calculated as log TG divided by HDL-C [28]. Assessment of insulin sensitivity was performed by the homeostasis model assessment of insulin resistance (HOMA-IR) based on fasting glucose and insulin measurements as follows: HOMA-IR: (glucose (mg/dl) × insulin (mU/l)) / 405. High HOMA-IR scores denote high insulin resistance [29]. Serum Nesfatin-1 concentration was also assessed by ELISA method (Hangzhou Eastbiopharm Co, USA). This assay had a sensitivity of 0.15 ng/ml.

Statistical assays

Statistical analysis was performed by SPSS™ statistical software (SPSS Inc., Chicago, IL, USA). Quantitative data were presented as mean ± standard deviation (SD), and qualitative data were demonstrated as frequency and percent. Kolmogorov-Smirnov test was used to assess the normality of data. Between groups comparisons of continuous variables were performed by independent sample t-test. Paired t-test was used for before and after intervention comparisons. Analysis of covariance (ANCOVA) was used to identify any differences between two treatment groups after intervention adjusting for the confounding effects of baseline concentrations of parameter, age and gender.

Results

In the current study 40 patients with Hashimoto’s thyroiditis were enrolled. The demographic and biochemical characteristics of study population are shown in Table 1. Participants in two Nigella-sativa and placebo treated group were similar in their mean age and gender distribution. Baseline values of anthropometric variables were also similar between groups. Whereas, weight and BMI of Nigella-sativa group significantly reduced after 8 weeks intervention period while no changes observed in placebo-treated group. Dietary energy and nutrient intakes before and after intervention are presented in Table 2. Energy and nutrient intakes were similar between groups before intervention and no significant change observed after intervention. Nigella sativa significantly reduced serum LDL, TG and AIP values (P < 0.05). Serum HDL increased after Nigella sativa supplementation. None of these changes were observed in placebo treated group. Serum Nesfatin-1 also did not change after intervention; moreover, serum TSH and anti-TPO concentrations reduced while serum T3 increased in Nigella sativa treated group (P < 0.05). (Table 3). A significant negative relationship was observed between baseline values of Nesfatin-1 and serum triglyceride concentrations (Fig. 2).
Table 1

Demographic characteristics and anthropometric variables in treatment groups before and after intervention

NNigella Sativa treated GroupControl groupP
N = 20N = 20
Age (years)35.70 ± 8.1833.95 ± 8.720.52
Female [n(%)]17 (85)17 (85)0.89
Weight (kg)
 Before70.52 ± 12.2769.63 ± 11.750.81
 After69.39 11.8469.62 11.800.95
P‡ 0.004 0.91
BMI (kg/m2)
 Before27.10 ± 4.6325.93 ± 4.070.40
 After26.63 ± 4.4225.95 ± 4.110.61
P‡ 0.002 0.65
WHR
 Before0.86 ± 0.0520.87 ± 0.0530.53
 After0.86 ± 0.050.87 ± 4.110.61
P ‡0.380.53
Physical activity (Met-min/day)
 Before5.25 ± 0.405.29 ± 0.560.81
 After5.26 ± 0.435.55 ± 0.890.20
P ‡0.890.22

Data are presented as mean ± SD or number (percent). BMI body mass index, WC waist circumference, HC hip circumference, WHR waist to hip ratio; †P values for ANCOVA after adjustment for age, duration of the disease and variable’s baseline value; ‡ P values for paired t-test

The bold data present statistically significant values

Table 2

Dietary intakes of energy and nutrients in treatment groups before and after intervention

NPowdered Black Cumin TreatedPlacebo treatedP
N = 20N = 20
Energy (kcal/d)
 Before2251.90 ± 349.582208.95 ± 327.800.69
 After2236.40 ± 248.272265.45 ± 270.730.72
P‡0.770.32
Carbohydrate (%)
 Before57.11 ± 2.9057.07 ± 3.780.97
 After57.24 ± 2.7157.58 ± 3.320.72
P‡0.260.67
Protein (%)
 Before15.73 ± 1.6815.07 ± 1.290.17
 After15.77 ± 1.3615.10 ± 1.810.19
P‡0.940.94
 Fat (%)
 Before27.34 ± 2.1526.57 ± 2.320.28
 After26.56 ± 1.9626.13 ± 2.480.55
P‡0.510.51
Vitamin E (mg/d)
 Before2.98 ± 1.083.43 ± 1.480.36
 After2.89 ± 1.643.40 ± 1.190.28
P‡0.800.96
Vitamin C (mg/d)
 Before79.75 ± 22.6975.67 ± 17.240.52
 After78.37 ± 11.8475.45 ± 15.360.59
P‡0.770.91

Data are presented as mean ± SD. †P values for ANCOVA after adjustment for age, duration of the disease and baseline concentration of parameter; ‡P values for paired t-test

Table 3

Metabolic parameters and thyroid hormones in treatment groups before and after intervention

NPowdered Black Cumin TreatedPlacebo treatedP
N = 20N = 20
FSG (mg/dl)
 Before86.60 ± 8.4688.10 ± 8.560.58
 After84.90 ± 7.0187.80 ± 6.030.16
P‡0.310.85
Insulin (μIU/ml)
 Before10.62 ± 7.517.71 ± 4.120.14
 After29.18 ± 19.9317.30 ± 9.16 0.023
P‡ < 0.001 < 0.001
HOMA-IR
 Before2.32 ± 1.711.67 ± 0.920.14
 After6.09 ± 4.063.76 ± 2.08 0.03
P‡ < 0.001 < 0.001
HDL (mg/dl)
 Before41.55 ± 4.6741.70 ± 6.500.93
 After43.75 ± 3.7240.57 ± 4.87 0.027
P‡ 0.046 0.26
LDL (mg/dl)
 Before130.65 ± 30.68105.00 ± 34.480.018
 After107.85 ± 36.99108.90 ± 32.880.92
P‡ 0.002 0.06
TG (mg/dl)
 Before177.10 ± 34.50186.00 ± 66.630.59
 After156.00 ± 21.92185.55 ± 74.980.11
P‡ 0.02 0.93
TC (mg/dl)
 Before183.70 ± 45.72179.10 ± 43.660.74
 After175.10 ± 29.06180.70 ± 44.950.64
P‡0.220.55
AIP
 Before0.62 ± 0.110.63 ± 0.150.86
 After0.54 ± 0.080.63 ± 0.16 0.04
P‡ < 0.001 0.68
Nesfatin-1 (ng/ml)
 Before41.80 ± 28.3325.86 ± 20.91 0.049
 After37.63 ± 5.9126.75 ± 23.950.175
P‡0.340.69
TSH (mIU/l)
 Before6.42 ± 3.868.14 ± 7.280.35
 After4.13 ± 2.358.27 ± 7.21 0.02
P‡ 0.03 0.40
T3 (mmol/l)
 Before0.92 ± 0.271.18 ± 0.360.017
 After1.06 ± 0.341.16 ± 0.350.39
P‡ 0.008 0.15
T4 (mmol/l)
 Before8.07 ± 2.567.97 ± 3.110.91
 After8.89 ± 1.437.63 ± 2.23 0.04
P‡0.210.32
Anti-TPO (IU/ml)
 Before294.55 ± 210.05278.10 ± 170.770.78
 After147.99 ± 158.33274.30 ± 167.20 0.01
P‡ 0.019 0.28

Data are presented as mean ± SD. †P values for ANCOVA after adjustment for age, duration of the disease and baseline concentration of parameter; ‡P values for paired t-test. FSG fasting serum glucose, TC total cholesterol, TG triglycerides, HDL high-density lipoprotein cholesterol, AIP atherogenic index of plasma, TSH thyroid-stimulating hormone, T3 triiodothyronine T4 thyroxine, TPO thyroid peroxidase

The bold data present the statistically significant values

Fig. 2

Relationship between serum Nesfatin-1 and triglyceride concentrations in total participants

Demographic characteristics and anthropometric variables in treatment groups before and after intervention Data are presented as mean ± SD or number (percent). BMI body mass index, WC waist circumference, HC hip circumference, WHR waist to hip ratio; †P values for ANCOVA after adjustment for age, duration of the disease and variable’s baseline value; ‡ P values for paired t-test The bold data present statistically significant values Dietary intakes of energy and nutrients in treatment groups before and after intervention Data are presented as mean ± SD. †P values for ANCOVA after adjustment for age, duration of the disease and baseline concentration of parameter; ‡P values for paired t-test Metabolic parameters and thyroid hormones in treatment groups before and after intervention Data are presented as mean ± SD. †P values for ANCOVA after adjustment for age, duration of the disease and baseline concentration of parameter; ‡P values for paired t-test. FSG fasting serum glucose, TC total cholesterol, TG triglycerides, HDL high-density lipoprotein cholesterol, AIP atherogenic index of plasma, TSH thyroid-stimulating hormone, T3 triiodothyronine T4 thyroxine, TPO thyroid peroxidase The bold data present the statistically significant values Relationship between serum Nesfatin-1 and triglyceride concentrations in total participants

Discussion

Hashimoto’s thyroiditis is accompanied with disturbances in serum lipids and glucose homeostasis. The disease is a known risk factor for hyperlipidemia and diabetes mellitus [6, 10]. The results of the current study provide insight into lipid-lowering effects of Nigella sativa in patients with Hashimoto’s thyroiditis. Moreover Nigella sativa reduced body weight and BMI in these patients. It is the first trial evaluating the effects of Nigella sativa on serum lipids and BMI in patients with Hashimoto’s thyroiditis. Weight reducing effects of Nigella sativa has been observed in previous studies; Zaoui A [30] reported a significant reduction in body weight in rats after 6 weeks treatment with Nigella sativa fixed oil (P < 0.001). In other study 3 month supplementation with 1.5 g daily powdered Nigella sativa in central obese men significantly reduced body weight [31]. In other study in menopausal women also slight and non-significant reduction in body weight was observed after 2 month treatment with 1 g/ day Nigella sativa [32]. The anti-obesity effects of Nigella might be explained by increasing mean rates of satiety and fullness [33]. Other possible mechanisms includes reduction in lipid absorption, reduced energy intake, increased energy expenditure, decreased pre-adipocyte differentiation and proliferation, or decreased lipogenesis and increased lipolysis [34]. In fact, other health promising effects of Nigella sativa like its hypolipidemic or hypoglycemic effects observed in our study and also previous reports [31, 35] could be explained by these mechanisms; we observed a strong reduction in serum LDL and TG and AIP and increase in serum HDL concentrations (P < 0.001 and P < 0.05 respectively). A mild non-significant reduction in serum FSG was also observed in Nigella sativa treated group. Serum insulin was increased in both groups and comparison of mean difference in serum insulin between groups showed no statistically significant difference. Although not clear explanation can be attributed to this phenomenon, however, the possible underlying reason can be the direct effects of pro-inflammatory cytokines in the Hashimoto’s thyroiditis against insulin resistance and deteriorating the pancreas’ β-cell function; TSH is a potent stimulator of interleukin (IL)-6, IL-2, C-reactive protein (CRP) and tumor necrosis factor (TNF)-α secretion from adipose tissue in patients with Hashimoto’s thyroiditis [36]. On the other hand, previous studies reporting the beneficial effects of Nigella sativa on glycemic status and insulin resistance used higher doses of Nigella sativa compared with our study [37, 38] or even more prolonged study duration time [39, 40]. Therefore, the beneficial effects of Nigella sativa on glycemic status and insulin resistance in the current dose and the study’s duration have not been observed. The underlying mechanisms previously suggested for hypolipidemic effects of Nigella sativa included an up-regulation of LDL-C molecules through receptor mediated endocytosis [35], decreased dietary cholesterol absorption, stimulation of primary bile acid synthesis and its fecal losses probably contributed to its dietary soluble fibers and sterols [32] and non-enzymatic lipid peroxidation by antioxidant properties of Nigella sativa making liver cells more efficient to remove LDL-C from blood by increasing LDL-C receptor densities in the liver and binding to apolipoprotein, apo-B [41-44]. In the current study serum Nesfatin-1 concentrations did not change after Nigella sativa supplementation. However, its serum concentrations was in inverse relationship with serum triglyceride concentrations (r = − 0.31, P < 0.05). Nesfatin-1 is a new anorexigenic hormone which is expressed from several regions of hypothalamus and peripheral tissues, including the adipose tissue, gastric mucosa, pancreatic beta-cells. Recent studies have demonstrated that Nesfatin-1 is negatively related with obesity and insulin resistance [32, 45]. Our finding also confirmed these results. However no change after Nigella sativa supplementation was observed in serum Nesfatin-1 concentrations. Probably because of the study’s low sample size.

Conclusions

We have demonstrated beneficial effects of powdered black cumin in improving serum lipids and reducing body weight in patients with Hashimoto’s thyroiditis. Considering these health-promoting effects of Nigella sativa, it can be considered as a beneficial herbal supplement alongside with the disease- specific medications including Levothyroxine in management of Hashimoto’s thyroiditis- related metabolic abnormalities.
  33 in total

1.  Efficacy of Nigella sativa on serum free testosterone and metabolic disturbances in central obese male.

Authors:  E A Datau; Eko E Surachmanto; K Pandelaki; J A Langi
Journal:  Acta Med Indones       Date:  2010-07

2.  Effect of Nigella sativa seeds on the glycemic control of patients with type 2 diabetes mellitus.

Authors:  Abdullah O Bamosa; Huda Kaatabi; Fatma M Lebdaa; Abdul-Muhssen Al Elq; Ali Al-Sultanb
Journal:  Indian J Physiol Pharmacol       Date:  2010 Oct-Dec

3.  Association of physical activity and dietary behaviours in relation to the body mass index in a national sample of Iranian children and adolescents: CASPIAN Study.

Authors:  Roya Kelishadi; Gelayol Ardalan; Riaz Gheiratmand; Mohammad Mehdi Gouya; Emran Mohammad Razaghi; Alireza Delavari; Reza Majdzadeh; Ramin Heshmat; Molouk Motaghian; Hamed Barekati; Minou Sadat Mahmoud-Arabi; Mohammad Mehdi Riazi
Journal:  Bull World Health Organ       Date:  2007-01       Impact factor: 9.408

4.  Hepatoprotective effects of Nigella sativa L and Urtica dioica L on lipid peroxidation, antioxidant enzyme systems and liver enzymes in carbon tetrachloride-treated rats.

Authors:  Mehmet Kanter; Omer Coskun; Mustafa Budancamanak
Journal:  World J Gastroenterol       Date:  2005-11-14       Impact factor: 5.742

5.  Autoantibodies and autoimmune diseases in young diabetics.

Authors:  S Kontiainen; A Schlenzka; S Koskimies; A Rilva; J Mäenpää
Journal:  Diabetes Res       Date:  1990-04

6.  The effect of vitamin A supplementation on thyroid function in premenopausal women.

Authors:  Mahdieh Abbasalizad Farhangi; Seyyed Ali Keshavarz; Mohammadreza Eshraghian; Alireza Ostadrahimi; Ali Akbar Saboor-Yaraghi
Journal:  J Am Coll Nutr       Date:  2012-08       Impact factor: 3.169

7.  A systematic review of anti-obesity medicinal plants - an update.

Authors:  Shirin Hasani-Ranjbar; Zahra Jouyandeh; Mohammad Abdollahi
Journal:  J Diabetes Metab Disord       Date:  2013-06-19

Review 8.  Thyroid disease and the heart.

Authors:  Irwin Klein; Sara Danzi
Journal:  Circulation       Date:  2007-10-09       Impact factor: 29.690

9.  Use of disphosphonates in the treatment of osteoporosis in thyroidectomized patients on levothyroxin replacement therapy.

Authors:  P Panebianco; D Rosso; G Destro; R A Scarpinato; S Tropea; A Rizzo; M S Russo; M Motta; F Di Stefano; R Mazzarella; D Maugeri
Journal:  Arch Gerontol Geriatr       Date:  1997 Sep-Oct       Impact factor: 3.250

10.  White blood cell count in women: relation to inflammatory biomarkers, haematological profiles, visceral adiposity, and other cardiovascular risk factors.

Authors:  Mahdieh Abbasalizad Farhangi; Seyyed-Ali Keshavarz; Mohammadreza Eshraghian; Alireza Ostadrahimi; Ali-Akbar Saboor-Yaraghi
Journal:  J Health Popul Nutr       Date:  2013-03       Impact factor: 2.000

View more
  5 in total

1.  Effect of Nigella Sativa oil versus metformin on glycemic control and biochemical parameters of newly diagnosed type 2 diabetes mellitus patients.

Authors:  Hebatallah Ahmed Mohamed Moustafa; Lamia Mohamed El Wakeel; Mohamed Reda Halawa; Nagwa Ali Sabri; Alshaymaa Zaki El-Bahy; Abdel Nasser Singab
Journal:  Endocrine       Date:  2019-05-31       Impact factor: 3.633

2.  Analysis of risk factors for the development of type 2 diabetes mellitus complicated with Hashimoto's thyroiditis.

Authors:  Meng Han; Haoneng Wu; Weiming Yang; Juanjuan Chen
Journal:  BMC Endocr Disord       Date:  2022-07-08       Impact factor: 3.263

3.  Combined Effects of High-Intensity Aerobic Exercise Training and Ziziphus jujuba Extract on Tissue Nesfatin-1 in Rats.

Authors:  Abbass Ghanbari-Niaki; Fahimeh Hosseini; David Robert Broom; Bahareh Tejenjari; Saleh Rahmati-Ahmadabad
Journal:  Front Endocrinol (Lausanne)       Date:  2022-05-03       Impact factor: 6.055

Review 4.  Nigella sativa in controlling Type 2 diabetes, cardiovascular, and rheumatoid arthritis diseases: Molecular aspects.

Authors:  Vahid Hadi; Naseh Pahlavani; Mahsa Malekahmadi; Elyas Nattagh-Eshtivani; Jamshid Gholizadeh Navashenaq; Saeid Hadi; Gordon A Ferns; Majid Ghayour-Mobarhan; Gholamreza Askari; Abdolreza Norouzy
Journal:  J Res Med Sci       Date:  2021-03-31       Impact factor: 1.852

5.  Correlation Between Hashimoto's Thyroiditis-Related Thyroid Hormone Levels and 25-Hydroxyvitamin D.

Authors:  Guanqun Chao; Yue Zhu; Lizheng Fang
Journal:  Front Endocrinol (Lausanne)       Date:  2020-02-14       Impact factor: 5.555

  5 in total

北京卡尤迪生物科技股份有限公司 © 2022-2023.