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Article

Role of Toothbrushes as Gene Expression Profiling Tool for Oral Cancer Screening in Tobacco and Alcohol Users

by
Govindarajan Sujatha
1,2,
Vishnu Priya Veeraraghavan
3,
Ahmed Alamoudi
4,
Maha A. Bahammam
5,6,
Sarah Ahmed Bahammam
7,
Yaser Ali Alhazmi
8,
Hazar S. Alharbi
9,
Khalid J. Alzahrani
10,
Mohammad S. Al-Ghamdi
10,
Fuad M. Alzahrani
10,
Saranya Varadarajan
1,
A. Thirumal Raj
1 and
Shankargouda Patil
11,12,*
1
Department of Oral Pathology and Microbiology, Sri Venkateswara Dental College and Hospital, Chennai 600130, India
2
Saveetha Institute of Medical and Technical Sciences, Saveetha Dental College and Hospitals, Saveetha University, Chennai 600130, India
3
Centre of Molecular Medicine and Diagnostics (COMManD), Department of Biochemistry, Saveetha Dental College & Hospitals, Saveetha Institute of Medical and Technical Sciences, Saveetha University, Chennai 600130, India
4
Oral Biology Department, Faculty of Dentistry, King Abdulaziz University, Jeddah 21589, Saudi Arabia
5
Department of Periodontology, Faculty of Dentistry, King Abdulaziz University, Jeddah 21589, Saudi Arabia
6
Executive Presidency of Academic Affairs, Saudi Commission for Health Specialties, Riyadh 11614, Saudi Arabia
7
Department of Pediatric Dentistry and Orthodontics, College of Dentistry, Taibah University, Medina 42353, Saudi Arabia
8
Department of Oral and Maxillofacial Surgery and Diagnostic Sciences, College of Dentistry, Jazan University, Jazan 45412, Saudi Arabia
9
Department of Basic Dental Sciences, College of Dentistry, Princess Nourah Bint Abdulrahman University, Riyadh 11671, Saudi Arabia
10
Department of Clinical Laboratories Sciences, College of Applied Medical Sciences, Taif University, Taif 21944, Saudi Arabia
11
Department of Maxillofacial Surgery and Diagnostic Sciences, Division of Oral Pathology, College of Dentistry, Jazan University, Jazan 45412, Saudi Arabia
12
Centre of Molecular Medicine and Diagnostics (COMManD), Saveetha Dental College & Hospitals, Saveetha Institute of Medical and Technical Sciences, Saveetha University, Chennai 600130, India
*
Author to whom correspondence should be addressed.
Int. J. Environ. Res. Public Health 2022, 19(13), 8052; https://doi.org/10.3390/ijerph19138052
Submission received: 28 May 2022 / Revised: 18 June 2022 / Accepted: 28 June 2022 / Published: 30 June 2022
(This article belongs to the Special Issue Tobacco and Alcohol and Its Related Diseases and or Injuries)

Abstract

:
Aim: The use of toothbrushes was investigated as a potential RNA source and gene expression profiling tool for oral cancer screening in tobacco and alcohol users. Methodology: A total of 20 subjects were selected on the basis of inclusion and exclusion criteria. They were divided into two groups: group I—healthy controls (n = 6); group II—individuals who consume tobacco and alcohol (n = 14). After the volunteers brushed their teeth using a soft-bristle toothbrush with ~0.5 gm of toothpaste, the toothbrushes were collected, and the gene expression of BAX, BCL2, CDK4, CKDN2A, GNB3, and TCF7L2 was assessed. Results: The gene expression of BAX decreased significantly in alcoholics and smokers (0.13867 ± 0.12014), while the gene expression of BCL2 increased in alcoholics and smokers (1.91001 ± 0.90425) in comparison with healthy controls (p = 0.0054 and p = 0.0055). Although there was increased expression of CDK4, CKDN2A, and TCF7L2 and decreased expression of GNB3 in smokers and alcoholics, the results were not significant. Conclusions: A toothbrush is a good source of RNA, and gene expression analysis can be performed using the genetic material retrieved from toothbrushes, which can aid in the early diagnosis of oral squamous cell carcinoma among tobacco and alcohol users. Further studies with a larger sample size and different durations of toothbrush use should be conducted to explore the role of toothbrushes as a noninvasive tool for disease diagnosis.

1. Introduction

Oral cancer is a major cause of death in developing countries, with 90% of death seemingly due to oral squamous cell carcinoma (OSCC) [1]. The disease is multifactorial in etiology with a complex pathogenesis, including prolonged exposure to a carcinogen. Although several etiologic factors are known to cause the disease, tobacco and alcohol account for 40% of cancers and 60% of fatal cases [2]. Nicotine, the major component of tobacco, is responsible for genetic and epigenetic alterations of cancer-related genes. The harmful compounds in tobacco cause DNA damage, thereby reducing its ability to be repaired during replication, which may cause diseases related to the respiratory system [3,4]. Studies have also reported the consequences of long-term exposure to nicotine, which usually causes attention deficits and mood disorders [5] A study also reported that nicotine exposure in any age group can reduce insulin sensitivity and contribute to diabetes mellitus [6]. Prolonged usage of nicotine contributes to the risk of developing cardiovascular diseases, as well as affects the immune system. Among females, exposure to nicotine during pregnancy can impact fetal brain development and may lead to preterm delivery and low birthweight [7]. Studies have also shown that alcohol consumption is associated with smoking. In other words smokers are more vulnerable to becoming addicted to alcohol consumption [8]. Smoking, along with consumption of alcohol, leads to a higher chance of developing oral cancer [9,10,11,12,13,14].
Considering the pathogenesis following prolonged exposure of the oral mucosa to these carcinogens, several complex genetic and molecular mechanisms occur that lead to increased mitosis, evasion of apoptosis, and immune surveillance. Despite several recent advances in the management of the disease, the prognosis and 5 year survival rate have not seen much improvement. Hence, early diagnosis and treatment are vital to improve the prognosis of the disease. Several noninvasive tools are being explored to aid in early diagnosis and disease prevention. The most common genes altered in potentially malignant diseases, cancer, and tobacco users include apoptosis-related genes BAX and BCL2 and cell-cycle-related genes such as cyclin-dependent kinases CDKN2A and CDK4 [15,16]. In addition, the gene expression of GNB3 and TCF7L2 has been linked to alcohol and nicotine addiction, respectively [17,18].
Saliva is commonly used as a noninvasive tool for the diagnosis of various diseases including oral cancer [19]. However, it is sensitive to the technique used, while the collection and storage of samples are cumbersome. In this regard, toothbrushes have been recently explored as an accurate tool in genetic analysis for person and gender identification in forensic dentistry. However, the expression of apoptosis- and cell-cycle-related genes in the genetic material retrieved from used toothbrushes has not been assessed. Therefore, this study aimed to evaluate the use of toothbrushes as a potential RNA source and gene expression profiling tool for oral cancer screening in tobacco and alcohol users.

2. Materials and Methods

The Institutional Ethics Committee (Ref No: IHEC/SDC/PhD/O PATH-1759/18/398) approved the study.

2.1. Sample Collection and Preparation

A total of 20 subjects (four females and 16 males; age: 26–52 years) were selected on the basis of the inclusion and exclusion criteria. They were divided into two groups: group I—healthy controls (n = 6); group II—individuals who consume tobacco and alcohol (n = 14). The volunteers were asked to brush their teeth using a soft-bristle toothbrush with ~0.5 g of toothpaste. Colgate® toothpaste was used for all subjects.

2.2. Inclusion Criteria

Group I included systemically healthy patients with an absence of harmful habits. Group II included individuals with a cigarette smoking habit, along with consumption of alcohol (higher risk of oral cancer), i.e., individuals with both a current smoking habit and a previous history of smoking a minimum of 100 cigarettes in the last 5 years [20].

2.3. Exclusion Criteria

Group I excluded individuals characterized by other systemic diseases, complications, habits such as the use of tobacco and alcohol, pregnancy, and lactation. Group II excluded individuals characterized by other systemic diseases, complications, pregnancy, and lactation.

2.4. Sample Collection

After brushing, the toothbrushes were washed gently and the bristles were dipped in phosphate-buffered saline (PBS) (Sigma, St. Louis, MO, USA). Later, the brushes were stored at 4 °C until transfer to the laboratory.
The bristles were cut using a sterile blade and rinsed thoroughly in PBS. Subsequently, the floating bristles were removed and discarded. The sample was centrifuged for 10 min at 3000 RPM. The supernatant was discarded, and the pellets at the bottom were further examined for total RNA isolation.

2.5. Real-Time Quantitative Polymerase Chain Reaction (RT-qPCR) for Quantitative Analysis of Gene Expression

RT-qPCR was performed as described previously [16,21]. The RNA extraction from the pellets was performed using a Gene JET RNA purification kit (Thermo Scientific, Vilnius, Lithuania). Multiskan SkyHigh (Thermo Scientific, Waltham, MA, USA) was used for RNA quantification. RNA (2 μg) was reverse-transcribed using a cDNA synthesis kit (High Capacity, Applied Biosystems, Carlsbad, CA, USA) as per the guidelines of the manufacturer. Then, 1.8 μL of cDNA was used for the total reaction volume including 20 μg for each gene. Later, 5 μL of SYBR Green PCR master mix (Applied Biosystems, Austin, TX, USA) (total reaction volume of 10 μL) was used for quantitative analysis of the genes of interest on a real-time PCR system (Quant Studio 5, Applied Biosystems, Foster City, CA, USA). The expression of target genes was normalized to ACTB as the reference gene using the ΔΔCt method. Data quantification was performed using the 2−ΔΔCt technique.

2.6. Genes Assessed

Apoptosis-related gene expression: The gene expression of BAX and BCL2 was assessed in the isolated RNA. The ratio of BAX to BCL2 was calculated to determine the overall effect on the apoptotic status.
Cell proliferation-related gene expression: The gene expression of cyclin-dependent kinases CDKN2A and CDK4, as well as their respective inhibitors, was assessed to determine the proliferation status.

2.7. Expression of Metabolic-Related Genes

The gene expression of GNB3 and TCF7L2 was assessed using the primers depicted in Table 1. ACTB encoding beta (β)-actin was used as the housekeeping gene. The list of primers (Eurofins) and genes is given in Table 1. PCR cycling conditions are summarized in Table 2.

2.8. Statistical Analysis

Statistical analysis was performed using GraphPad Prism 8 software (GraphPad Software, La Jolla, CA, USA), with a statistical significance of p < 0.05 (* p < 0.05 and ** p < 0.01). The results were tabulated as the mean ± standard deviation of three replicates for each individual experiment. All experimental groups were compared with each other using an unpaired t-test (two-tailed).

3. Results

There was a significant decline in the gene expression of BAX in alcohol and tobacco users (0.13867 ± 0.12014) in comparison with healthy controls (0.73645 ± 0.53477) (p = 0.0054 **) and a significant increase in the gene expression of BCL2 in alcohol and tobacco users (1.91001 ± 0.90425) in comparison with healthy controls (0.84895 ± 0.36261) (p = 0.0055 **). The gene expression of CDK4 (p = 0.5144) and CDKN2A (p = 0.2901) was comparatively high in tobacco and alcohol users, but the values were not statistically significant. The gene expression of GNB3 (p = 0.6767) and TCF7L2 (p = 0.3832) showed no statistically significant difference in the two groups (Table 3). Results are summarized in Figure 1.

4. Discussion

The use of tobacco and alcohol among individuals has increased over the years, leading to a high global incidence of head and neck cancers. Hence, early detection can aid in the diagnosis and early prevention and management of the condition, thereby improving the prognosis. Several studies have shown microscopic alterations in tobacco and alcohol users via exfoliative cytology, although biopsy is the gold standard. Saliva has also been explored as a diagnostic tool for oral cancer detection. However, toothbrushes have not yet been used for detecting gene expression among tobacco and alcohol users. Therefore, this study explored the potential application of used toothbrushes as a gene expression profiling tool for oral cancer screening in tobacco and alcohol users. Since tobacco users predominantly consume alcohol, together responsible for 80% of oral cancer in men, the present study included both tobacco and alcohol users [12,13,14].
The gene expression of BAX was significantly increased in smokers and alcohol users compared with healthy controls. It is a well-known fact that the BAX gene (Bcl-2-associated X-protein) is a proapoptotic gene of Bcl-2 family, encoding the BAX-alpha protein, which plays a vital role in the intrinsic pathway of apoptosis [22,23]. The decreased expression of BAX in group II was attributed to the fact that tobacco and alcohol are associated with carcinogenesis, which is marked by apoptosis evasion. The gene expression of BCL2 was high in tobacco and alcohol users when compared with healthy controls. These findings are in accordance with the results of Tekna et al. and Rahmani et al. who presented the aberrant expression of BCL2 in tobacco users and concluded that BCL2 expression could play a direct role in tumorigenesis through apoptosis evasion [24,25].
Considering the proliferation markers involved in the cell cycle, CDK4 and CDKN2A, although the results were not significant, the expression of both genes was higher in tobacco and alcohol users when compared with healthy controls. This might be related to the sample size in the present study. However, a higher expression of these genes indicates future malignant transformation, as studies have shown the association between increased expression of cyclins and cyclin-dependent kinases in potentially malignant disorders and oral squamous cell carcinoma. CDKN2A has been shown to be involved in tumorigenesis via regulation of mitosis, cell death, and cell-cycle progression in the G1/S phase [26,27]. Zhou et al., in their systematic review, reported significant increased methylation of the CDKN2A gene in head and neck carcinogenesis with an odds ratios (ORs) of 6.72, p < 0.01 (cancer versus normal), 1.89, p < 0.05 (cancer versus precancer), and 14.70, p < 0.01 (precancer versus healthy control) [28]. Similarly, Chen et al. reported the role of the CDK4 substrate of p16, which is produced by the cyclin-dependent kinase 2 (CDKN2) gene, in oral carcinogenesis, as demonstrated by the aberrant expression of the protein in leukoplakia and OSCC [29]. In this study, no statistically significant variations were found in the expression of GNB2 and TCF7L. This could be attributed to the fact that previous studies have shown that these genes are related to addiction to alcohol and tobacco in patients with systemic conditions, whereas, in the present study, the sample size was low and the patients were otherwise systemically healthy and drug dependence was not severe [17,18].
The current study is the first to perform gene profiling using used toothbrushes. Similar studies have used toothbrushes for person and gender identification, whereas gene profiling has not yet been performed [21,30,31,32,33,34]. The methodology for DNA isolation has been standardized, and this study provides a reference for the future exploration of toothbrushes not only as a forensic tool but also for the early diagnosis of diseases. The advantages of using a toothbrush is that it is noninvasive and the RNA yield is adequate. However, a disadvantage is that the accidental exchange of toothbrushes with family members could alter the results.
Some of the study limitations include the small sample size, duration of toothbrush use, and RNA yield, which were not assessed. Future studies can be conducted to assess the use of toothbrushes in the early detection of oral squamous cell carcinoma.

5. Conclusions

Within the limitations of the study, it can be concluded that used toothbrushes are an excellent source of RNA, enabling gene expression analysis for the diagnosis of oral squamous cell carcinoma at an early stage among tobacco and alcohol users. Further studies investigating the ideal protocol for RNA extraction from commercially available toothbrushes are required in order to translate the findings of the present study to routine clinical practice. In addition, variables including the number of bristles, hardness of the bristles, and the use of toothpaste (a potential PCR inhibitor) must be assessed to provide further insight into their influence on the extracted RNA quality and quantity.

Author Contributions

Conceptualization, G.S. and V.P.V.; methodology, A.A., S.V., S.A.B. and M.A.B.; software, and K.J.A.; validation, M.S.A.-G. and F.M.A.; formal analysis, H.S.A. and Y.A.A.; investigation, A.T.R. and S.P.; resources, M.S.A.-G. and F.M.A.; data curation, Y.A.A. and A.T.R.; writing—original draft preparation, G.S., V.P.V., A.A., M.A.B. and K.J.A.; S.A.B. writing—review and editing, M.S.A.-G., F.M.A., H.S.A., Y.A.A., A.T.R., S.P. and S.V.; visualization, G.S. and V.P.V.; supervision, A.A. and M.A.B.; project administration, S.V. and K.J.A.; funding acquisition, M.S.A.-G. and F.M.A. All authors have read and agreed to the published version of the manuscript.

Funding

This research received no external funding.

Institutional Review Board Statement

The study was conducted in accordance with the Declaration of Helsinki and approved by the Institutional Review Board (or Ethics Committee) of Saveetha Dental college and Hospital, Chennai (Ref No: IHEC/SDC/PhD/O PATH-1759/18/398) for studies involving humans.

Informed Consent Statement

Consent was obtained from all patients participating in the study.

Data Availability Statement

Not applicable.

Conflicts of Interest

The authors declare no conflict of interest.

References

  1. Mohanta, S.; Siddappa, G.; Valiyaveedan, S.G.; Ramanjanappa, R.D.T.; Das, D.; Pandian, R.; Khora, S.; Kuriakose, M.A.; Suresh, A. Cancer stem cell markers in patterning differentiation and in prognosis of oral squamous cell carcinoma. Tumor Biol. 2017, 39, 1010428317703656. [Google Scholar] [CrossRef] [PubMed] [Green Version]
  2. Shukla, S.; Shukla, S. Oral Cancer—Curse, Cure and Challenge. Indian J. Surg. 2012, 74, 437–439. [Google Scholar] [CrossRef] [PubMed] [Green Version]
  3. United States Public Health Service; Office of the Surgeon General, National Center for Chronic Disease Prevention, Health Promotion (US); Office on Smoking. Preventing Tobacco Use among Youth and Young Adults: A Report of the Surgeon General; General Surgery Reports; US Government Printing Office: Washington, DC, USA, 2016; Volume 298.
  4. Lee, H.-W.; Park, S.-H.; Weng, M.-W.; Wang, H.-T.; Huang, W.C.; Lepor, H.; Wu, X.-R.; Chen, L.-C.; Tang, M.-S. E-cigarette smoke damages DNA and reduces repair activity in mouse lung, heart, and bladder as well as in human lung and bladder cells. Proc. Natl. Acad. Sci. USA 2018, 115, E1560–E1569. [Google Scholar] [CrossRef] [PubMed] [Green Version]
  5. Yuan, M.; Cross, S.J.; Loughlin, S.E.; Leslie, F.M. Nicotine and the adolescent brain. J. Physiol. 2015, 593, 3397–3412. [Google Scholar] [CrossRef] [Green Version]
  6. Bergman, B.C.; Perreault, L.; Hunerdosse, D.; Kerege, A.; Playdon, M.; Samek, A.M.; Eckel, R.H. Novel and Reversible Mechanisms of Smoking-Induced Insulin Resistance in Humans. Diabetes 2012, 61, 3156–3166. [Google Scholar] [CrossRef] [Green Version]
  7. Heidel, R. Reducing the Health Consequences of Smoking: 25 Years of Progress. A Report of the Surgeon General. Popul. Dev. Rev. 1989, 15, 165. [Google Scholar] [CrossRef]
  8. Grucza, R.A.; Bierut, L.J. Cigarette Smoking and the Risk for Alcohol Use Disorders Among Adolescent Drinkers. Alcohol. Clin. Exp. Res. 2006, 30, 2046–2054. [Google Scholar] [CrossRef]
  9. Franceschi, S.; Talamini, R.; Barra, S.; E Barón, A.; Negri, E.; Bidoli, E.; Serraino, D.; La Vecchia, C. Smoking and drinking in relation to cancers of the oral cavity, pharynx, larynx, and esophagus in northern Italy. Cancer Res. 1990, 50, 6502–6507. [Google Scholar]
  10. Zheng, T.; Boyle, P.; Hu, H.; Duan, J.; Jiang, P.; Ma, D.; Shui, L.; Niu, S.; MacMahon, B. Tobacco smoking, alcohol consumption, and risk of oral cancer: A case-control study in Beijing, People’s Republic of China. Cancer Causes Control 1990, 1, 173–179. [Google Scholar] [CrossRef]
  11. Zheng, T.; Boyle, P.; Zhang, B.; Zhang, Y.; Owens, P.H.; Lan, Q.; Wise, J. Tobacco use and risk of oral cancer. In Tobacco; Oxford University Press: Oxford, UK, 2010; pp. 393–418. [Google Scholar] [CrossRef]
  12. Hayes, R.; Bravo-Otero, E.; Kleinman, D.V.; Brown, L.M.; Fraumeni, J.F.; Harty, L.C.; Winn, D.M. Tobacco and alcohol use and oral cancer in Puerto Rico. Cancer Causes Control 1999, 10, 27–33. [Google Scholar] [CrossRef]
  13. Bosetti, C.; Negri, E.; Franceschi, S.; Conti, E.; Levi, F.; Tomei, F.; La Vecchia, C. Risk factors for oral and pharyngeal cancer in women: A study from Italy and Switzerland. Br. J. Cancer 2000, 82, 204–207. [Google Scholar] [CrossRef] [PubMed]
  14. Altieri, A.; Garavello, W.; Bosetti, C.; Gallus, S.; La Vecchia, C. Alcohol consumption and risk of laryngeal cancer. Oral Oncol. 2005, 41, 956–965. [Google Scholar] [CrossRef]
  15. Loro, L.L.; Vintermyr, O.K.; Liavaag, P.G.; Jonsson, R.; Johannessen, A.C. Oral squamous cell carcinoma is associated with decreased bcl-2/bax expression ratio and increased apoptosis. Hum. Pathol. 1999, 30, 1097–1105. [Google Scholar] [CrossRef]
  16. Banerjee, S.; Chunder, N.; Roy, A.; Sengupta, A.; Roy, B.; Roychowdhury, S.; Panda, C.K. Differential alterations of the genes in the CDKN2A-CCND1-CDK4-RB1 pathway are associated with the development of head and neck squamous cell carcinoma in Indian patients. J. Cancer Res. Clin. Oncol. 2003, 129, 642–650. [Google Scholar] [CrossRef]
  17. Prestes, A.P.; Marques, F.; Hutz, M.H.; Bau, C.H.D. The GNB3 C825T polymorphism and depression among subjects with alcohol dependence. J. Neural Transm. 2006, 114, 469–472. [Google Scholar] [CrossRef]
  18. Expression of a Gene in the Brain Links Nicotine Addiction to Diabetes; National Institute on Drug Abuse: Baltimore, MD, USA, 2022.
  19. Nagler, R.M. Saliva as a tool for oral cancer diagnosis and prognosis. Oral Oncol. 2009, 45, 1006–1010. [Google Scholar] [CrossRef]
  20. Centers for Disease Control and Prevention. Health Topic Data Guide: Alcohol Use in Past 30 Days, Smoking Status; Centers for Disease Control and Prevention: Atlanta, GA, USA, 2015.
  21. Reddy, A.V.S.; Sriram, G.; Saraswathi, T.; Sivapathasundharam, B. Isolation of epithelial cells from tooth brush and gender identification by amplification of SRY gene. J. Forensic Dent. Sci. 2011, 3, 27–32. [Google Scholar] [CrossRef] [Green Version]
  22. Apte, S.S.; Mattei, M.-G.; Olsen, B.R. Mapping of the human BAX gene to chromosome 19q13.3–q13.4 and isolation of a novel alternatively spliced transcript, BAXδ. Genomics 1995, 26, 592–594. [Google Scholar] [CrossRef]
  23. Fan, Y.; Zhan, Z.; Peng, T.; Song, X.-L.; Feng, Z.-Q. The expression of apoptosis-associated proteins Bcl-2, Bax in oral leukoplakia and lichen planus. Shanghai J. Stomatol. 2004, 13, 497–501. [Google Scholar]
  24. Teni, T.; Pawar, S.; Sanghvi, V.; Saranath, D. Expression of bcl-2 and bax in chewing tobacco-induced oral cancers and oral lesions from India. Pathol. Oncol. Res. 2002, 8, 109–114. [Google Scholar] [CrossRef]
  25. Rahmani, A.; Alzohairy, M.; Babiker, A.Y.; Rizvi, M.A.; Elkarimahmad, H.G. Clinicopathological significance of PTEN and bcl2 ex-pressions in oral squamous cell carcinoma. Int. J. Clin. Exp. Pathol. 2012, 5, 965–971. [Google Scholar]
  26. Kamb, A.; Gruis, N.A.; Weaver-Feldhaus, J.; Liu, Q.; Harshman, K.; Tavtigian, S.V.; Stockert, E.; Day, R.S.; Johnson, B.E.; Skolnick, M.H. A Cell Cycle Regulator Potentially Involved in Genesis of Many Tumor Types. Science 1994, 264, 436–440. [Google Scholar] [CrossRef] [PubMed] [Green Version]
  27. Serrano, M.; Hannon, G.J.; Beach, D.C. A new regulatory motif in cell-cycle control causing specific inhibition of cyclin D/CDK4. Nature 1993, 366, 704–707. [Google Scholar] [CrossRef] [PubMed]
  28. Zhou, C.; Shen, Z.; Ye, D.; Li, Q.; Deng, H.; Liu, H.; Li, J. The Association and Clinical Significance of CDKN2A Promoter Methylation in Head and Neck Squamous Cell Carcinoma: A Meta-Analysis. Cell. Physiol. Biochem. 2018, 50, 868–882. [Google Scholar] [CrossRef]
  29. Chen, Q.; Luo, G.; Li, B.; Samaranayake, L.P. Expression of p16 and CDK4 in oral premalignant lesions and oral squamous cell carcinomas: A semi-quantitative immunohistochemical study. J. Oral Pathol. Med. 2007, 28, 158–164. [Google Scholar] [CrossRef] [PubMed]
  30. Sujatha, G.; Priya, V.V.; Dubey, A.; Mujoo, S.; Sulimany, A.M.; Tawhari, A.M.O.; Mokli, L.K.; Mohana, A.J.; Varadarajan, S.; Balaji, T.M.; et al. Toothbrushes as a Source of DNA for Gender and Human Identification—A Systematic Review. Int. J. Environ. Res. Public Health 2021, 18, 11182. [Google Scholar] [CrossRef] [PubMed]
  31. Alfadaly, N.; Kassab, A.; Al Hedaithy, F. Determination of DNA profiling of siwak and toothbrush samples used in Kingdom of Saudi Arabia. Egypt. J. Med. Hum. Genet. 2016, 17, 383–387. [Google Scholar] [CrossRef] [Green Version]
  32. Riemer, L.B.; Fairley, D.; Sweet, D. DNA Collection From Used Toothbrushes as a Means to Decedent Identification. Am. J. Forensic Med. Pathol. 2012, 33, 354–356. [Google Scholar] [CrossRef]
  33. Ballantyne, J. Mass disaster genetics. Nat. Genet. 1997, 15, 329–331. [Google Scholar] [CrossRef]
  34. Tanaka, M.; Yoshimoto, T.; Nozawa, H.; Ohtaki, H.; Kato, Y.; Sato, K.; Yamamoto, T.; Tamaki, K.; Katsumata, Y. Usefulness of a toothbrush as a source of evidential DNA for typing. J. Forensic Sci. 2000, 45, 674–676. [Google Scholar] [CrossRef]
Figure 1. Gene expression of BAX, BCL2, CDK4, CDKN2A, GNB3, and TCF7L2 normalized to ACTB in healthy individuals vs. alcohol and tobacco users (AT). ** p ≤ 0.01.
Figure 1. Gene expression of BAX, BCL2, CDK4, CDKN2A, GNB3, and TCF7L2 normalized to ACTB in healthy individuals vs. alcohol and tobacco users (AT). ** p ≤ 0.01.
Ijerph 19 08052 g001
Table 1. List of primers.
Table 1. List of primers.
GeneForward PrimerReverse PrimerAccession No.
BAX5′-TCA GGA TGC GTC CAC CAA GAA G-3′5′-TGT GTC CAC GGC GGC AAT CAT C-3′NM_001291428
CDK45′-CCA TCA GCA CAG TTC GTG AGG T-3′5′-TCA GTT CGG GAT GTG GCA CAG A-3′BC005864
BCL25′-ATC GCC CTG TGG ATG ACT GAG T-3′5′-GCC AGG AGA AAT CAA ACA GAG GC-3′NM_000657.3
CDKN2A5′-CTC GTG CTG ATG CTA CTG AGG A-3′5′-GGT CGG CGC AGT TGG GCT CC-3′NM_001195132
GNB35′-GAG TCG GAC ATC AAC GCC ATC T-3′5′-ATG CCG CAG ATG ATG CTC TCG T-3′NM_002075.2
TCF7L25′-GAA TCG TCC CAG AGT GAT GTC G-3′5′-TGC ACT CAG CTA CGA CCT TTG C-3′NM_001198525
ACTB5′-AGA GCT ACG AGC TGC CTG AC-3′5′-AGC ATT TCT TCC CGG CCT TT-3′BC009636
Table 2. PCR cycling conditions.
Table 2. PCR cycling conditions.
StageTime (min:s)Temperature (°C)Cycles
Initial denaturation10:0095 °C
Denaturation2:0095 °C
Annealing0:3058 °C40×
Extension1:0072 °C
Melt curveIncrement of 00:0595–60 °C
Table 3. Relative gene expression (reference gene ACTB).
Table 3. Relative gene expression (reference gene ACTB).
MarkerHealthyATp-Value (Healthy vs. AT)
BAX0.73645 ± 0.534770.13867 ± 0.120140.0054 **
BCL20.84895 ± 0.362611.91001 ± 0.904250.0055 **
CDK40.14593 ± 0.03090.18325 ± 0.113830.5144
CDKN2A0.18127 ± 0.162250.3767 ± 0.289630.2901
GNB30.00191 ± 0.00330.00277 ± 0.000910.6767
TCF7L20.00962 ± 0.005580.02558 ± 0.02510.3832
AT (alcohol and tobacco users). ** p ≤ 0.01.
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Sujatha, G.; Veeraraghavan, V.P.; Alamoudi, A.; Bahammam, M.A.; Bahammam, S.A.; Alhazmi, Y.A.; Alharbi, H.S.; Alzahrani, K.J.; Al-Ghamdi, M.S.; Alzahrani, F.M.; et al. Role of Toothbrushes as Gene Expression Profiling Tool for Oral Cancer Screening in Tobacco and Alcohol Users. Int. J. Environ. Res. Public Health 2022, 19, 8052. https://doi.org/10.3390/ijerph19138052

AMA Style

Sujatha G, Veeraraghavan VP, Alamoudi A, Bahammam MA, Bahammam SA, Alhazmi YA, Alharbi HS, Alzahrani KJ, Al-Ghamdi MS, Alzahrani FM, et al. Role of Toothbrushes as Gene Expression Profiling Tool for Oral Cancer Screening in Tobacco and Alcohol Users. International Journal of Environmental Research and Public Health. 2022; 19(13):8052. https://doi.org/10.3390/ijerph19138052

Chicago/Turabian Style

Sujatha, Govindarajan, Vishnu Priya Veeraraghavan, Ahmed Alamoudi, Maha A. Bahammam, Sarah Ahmed Bahammam, Yaser Ali Alhazmi, Hazar S. Alharbi, Khalid J. Alzahrani, Mohammad S. Al-Ghamdi, Fuad M. Alzahrani, and et al. 2022. "Role of Toothbrushes as Gene Expression Profiling Tool for Oral Cancer Screening in Tobacco and Alcohol Users" International Journal of Environmental Research and Public Health 19, no. 13: 8052. https://doi.org/10.3390/ijerph19138052

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