Association of Serum Pyridoxal-5′-Phosphate, Pyridoxal, and PAr with Colorectal Cancer Risk: A Large-Scale Case-Control Study
Abstract
:1. Introduction
2. Materials and Methods
2.1. Study Subjects
2.2. Data Collection
2.3. Biochemical Measurement
2.4. Statistical Analysis
3. Results
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Sung, H.; Ferlay, J.; Siegel, R.L.; Laversanne, M.; Soerjomataram, I.; Jemal, A.; Bray, F. Global Cancer Statistics 2020: GLOBOCAN Estimates of Incidence and Mortality Worldwide for 36 Cancers in 185 Countries. CA Cancer J. Clin. 2021, 71, 209–249. [Google Scholar] [CrossRef] [PubMed]
- Yang, Y.; Han, Z.; Li, X.; Huang, A.; Shi, J.; Gu, J. Epidemiology and risk factors of colorectal cancer in China. Chin. J. Cancer Res. 2020, 32, 729–741. [Google Scholar] [CrossRef] [PubMed]
- Stach, K.; Stach, W.; Augoff, K. Vitamin B6 in Health and Disease. Nutrients 2021, 13, 3229. [Google Scholar] [CrossRef] [PubMed]
- Komatsu, S.; Yanaka, N.; Matsubara, K.; Kato, N. Antitumor effect of vitamin B6 and its mechanisms. Biochim. Biophys. Acta 2003, 1647, 127–130. [Google Scholar] [CrossRef]
- Matsubara, K.; Komatsu, S.-i.; Oka, T.; Kato, N. Vitamin B6-mediated suppression of colon tumorigenesis, cell proliferation, and angiogenesis (review). J. Nutr. Biochem. 2003, 14, 246–250. [Google Scholar] [CrossRef]
- Jia, K.; Wang, R.; Tian, J. Vitamin B6 Intake and the Risk of Colorectal Cancer: A Meta-Analysis of Prospective Cohort Studies. Nutr. Cancer 2017, 69, 723–731. [Google Scholar] [CrossRef]
- Huang, C.Y.; Abulimiti, A.; Zhang, X.; Feng, X.L.; Luo, H.; Chen, Y.M.; Fang, Y.J.; Zhang, C.X. Dietary B vitamin and methionine intakes and risk for colorectal cancer: A case-control study in China. Br. J. Nutr. 2020, 123, 1277–1289. [Google Scholar] [CrossRef]
- Ebbing, M.; Bønaa, K.H.; Nygård, O.; Arnesen, E.; Ueland, P.M.; Nordrehaug, J.E.; Rasmussen, K.; Njølstad, I.; Refsum, H.; Nilsen, D.W.; et al. Cancer incidence and mortality after treatment with folic acid and vitamin B12. JAMA 2009, 302, 2119–2126. [Google Scholar] [CrossRef] [Green Version]
- Kuhnle, G.G. Nutritional biomarkers for objective dietary assessment. J. Sci. Food Agric. 2012, 92, 1145–1149. [Google Scholar] [CrossRef]
- Pfeiffer, C.M.; Schleicher, R.L.; Johnson, C.L.; Coates, P.M. Assessing vitamin status in large population surveys by measuring biomarkers and dietary intake—Two case studies: Folate and vitamin D. Food Nutr. Res. 2012, 56. [Google Scholar] [CrossRef]
- Ueland, P.M.; Ulvik, A.; Rios-Avila, L.; Midttun, O.; Gregory, J.F. Direct and Functional Biomarkers of Vitamin B6 Status. Annu. Rev. Nutr. 2015, 35, 33–70. [Google Scholar] [CrossRef] [PubMed]
- Albersen, M.; Bosma, M.; Luykx, J.J.; Jans, J.J.; Bakker, S.C.; Strengman, E.; Borgdorff, P.J.; Keijzers, P.J.; van Dongen, E.P.; Bruins, P.; et al. Vitamin B-6 vitamers in human plasma and cerebrospinal fluid. Am. J. Clin. Nutr. 2014, 100, 587–592. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Weinstein, S.J.; Albanes, D.; Selhub, J.; Graubard, B.; Lim, U.; Taylor, P.R.; Virtamo, J.; Stolzenberg-Solomon, R. One-carbon metabolism biomarkers and risk of colon and rectal cancers. Cancer Epidemiol. Biomark. Prev. 2008, 17, 3233–3240. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Wei, E.K.; Giovannucci, E.; Selhub, J.; Fuchs, C.S.; Hankinson, S.E.; Ma, J. Plasma vitamin B6 and the risk of colorectal cancer and adenoma in women. J. Natl. Cancer Inst. 2005, 97, 684–692. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Lee, J.E.; Li, H.; Giovannucci, E.; Lee, I.M.; Selhub, J.; Stampfer, M.; Ma, J. Prospective study of plasma vitamin B6 and risk of colorectal cancer in men. Cancer Epidemiol. Biomark. Prev. 2009, 18, 1197–1202. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Le Marchand, L.; White, K.K.; Nomura, A.M.; Wilkens, L.R.; Selhub, J.S.; Tiirikainen, M.; Goodman, M.T.; Murphy, S.P.; Henderson, B.E.; Kolonel, L.N. Plasma levels of B vitamins and colorectal cancer risk: The multiethnic cohort study. Cancer Epidemiol. Biomark. Prev. 2009, 18, 2195–2201. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Gylling, B.; Myte, R.; Schneede, J.; Hallmans, G.; Haggstrom, J.; Johansson, I.; Ulvik, A.; Ueland, P.M.; Van Guelpen, B.; Palmqvist, R. Vitamin B-6 and colorectal cancer risk: A prospective population-based study using 3 distinct plasma markers of vitamin B-6 status. Am. J. Clin. Nutr. 2017, 105, 897–904. [Google Scholar] [CrossRef]
- Eussen, S.J.; Vollset, S.E.; Hustad, S.; Midttun, O.; Meyer, K.; Fredriksen, A.; Ueland, P.M.; Jenab, M.; Slimani, N.; Boffetta, P.; et al. Plasma vitamins B2, B6, and B12, and related genetic variants as predictors of colorectal cancer risk. Cancer Epidemiol. Biomark. Prev. 2010, 19, 2549–2561. [Google Scholar] [CrossRef] [Green Version]
- Chiang, F.F.; Wang, H.M.; Lan, Y.C.; Yang, M.H.; Huang, S.C.; Huang, Y.C. High homocysteine is associated with increased risk of colorectal cancer independently of oxidative stress and antioxidant capacities. Clin. Nutr. 2014, 33, 1054–1060. [Google Scholar] [CrossRef]
- Barnard, H.C.; de Kock, J.J.; Vermaak, W.J.; Potgieter, G.M. A new perspective in the assessment of vitamin B-6 nutritional status during pregnancy in humans. J. Nutr. 1987, 117, 1303–1306. [Google Scholar] [CrossRef] [Green Version]
- Hustad, S.; Eussen, S.; Midttun, O.; Ulvik, A.; van de Kant, P.M.; Morkrid, L.; Gislefoss, R.; Ueland, P.M. Kinetic modeling of storage effects on biomarkers related to B vitamin status and one-carbon metabolism. Clin. Chem. 2012, 58, 402–410. [Google Scholar] [CrossRef] [PubMed]
- Ink, S.L.; Henderson, L.M. Vitamin B6 metabolism. Annu. Rev. Nutr. 1984, 4, 455–470. [Google Scholar] [CrossRef] [PubMed]
- Ulvik, A.; Midttun, Ø.; Pedersen, E.R.; Eussen, S.J.; Nygård, O.; Ueland, P.M. Evidence for increased catabolism of vitamin B-6 during systemic inflammation. Am. J. Clin. Nutr. 2014, 100, 250–255. [Google Scholar] [CrossRef] [Green Version]
- Zuo, H.; Ueland, P.M.; Midttun, O.; Vollset, S.E.; Tell, G.S.; Theofylaktopoulou, D.; Travis, R.C.; Boutron-Ruault, M.C.; Fournier, A.; Severi, G.; et al. Results from the European Prospective Investigation into Cancer and Nutrition Link Vitamin B6 Catabolism and Lung Cancer Risk. Cancer Res. 2018, 78, 302–308. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Zuo, H.; Ueland, P.M.; Midttun, O.; Tell, G.S.; Fanidi, A.; Zheng, W.; Shu, X.; Xiang, Y.; Wu, J.; Prentice, R.; et al. Vitamin B6 catabolism and lung cancer risk: Results from the Lung Cancer Cohort Consortium (LC3). Ann. Oncol. 2019, 30, 478–485. [Google Scholar] [CrossRef]
- Huang, J.Y.; Butler, L.M.; Midttun, O.; Koh, W.P.; Ueland, P.M.; Wang, R.; Jin, A.; Gao, Y.T.; Yuan, J.M. Serum B6 vitamers (pyridoxal 5′-phosphate, pyridoxal, and 4-pyridoxic acid) and pancreatic cancer risk: Two nested case-control studies in Asian populations. Cancer Causes Control 2016, 27, 1447–1456. [Google Scholar] [CrossRef] [PubMed]
- Zuo, H.; Ueland, P.M.; Eussen, S.J.; Tell, G.S.; Vollset, S.E.; Nygard, O.; Midttun, O.; Meyer, K.; Ulvik, A. Markers of vitamin B6 status and metabolism as predictors of incident cancer: The Hordaland Health Study. Int. J. Cancer 2015, 136, 2932–2939. [Google Scholar] [CrossRef] [Green Version]
- Zhong, X.; Fang, Y.J.; Pan, Z.Z.; Li, B.; Wang, L.; Zheng, M.C.; Chen, Y.M.; Zhang, C.X. Dietary fat, fatty acid intakes and colorectal cancer risk in Chinese adults: A case-control study. Eur. J. Cancer Prev. 2013, 22, 438–447. [Google Scholar] [CrossRef]
- Zhang, C.X.; Ho, S.C. Validity and reproducibility of a food frequency Questionnaire among Chinese women in Guangdong province. Asia Pac. J. Clin. Nutr. 2009, 18, 240–250. [Google Scholar]
- Yang, Y.X.; Wang, G.Y.; Pan, X.C. China Food Composition; Peking University Medical Press: Beijing, China, 2002. [Google Scholar]
- Ainsworth, B.E.; Haskell, W.L.; Whitt, M.C.; Irwin, M.L.; Swartz, A.M.; Strath, S.J.; O’Brien, W.L.; Bassett, D.R., Jr.; Schmitz, K.H.; Emplaincourt, P.O.; et al. Compendium of physical activities: An update of activity codes and MET intensities. Med. Sci. Sports Exerc. 2000, 32, S498–S504. [Google Scholar] [CrossRef] [Green Version]
- Ainsworth, B.E.; Haskell, W.L.; Herrmann, S.D.; Meckes, N.; Bassett, D.R., Jr.; Tudor-Locke, C.; Greer, J.L.; Vezina, J.; Whitt-Glover, M.C.; Leon, A.S. 2011 Compendium of Physical Activities: A second update of codes and MET values. Med. Sci. Sports Exerc. 2011, 43, 1575–1581. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Midttun, O.; Hustad, S.; Solheim, E.; Schneede, J.; Ueland, P.M. Multianalyte quantification of vitamin B6 and B2 species in the nanomolar range in human plasma by liquid chromatography-tandem mass spectrometry. Clin. Chem. 2005, 51, 1206–1216. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Kushnir, M.M.; Song, B.; Yang, E.; Frank, E.L. Development and Clinical Evaluation of a High-Throughput LC-MS/MS Assay for Vitamin B6 in Human Plasma and Serum. J. Appl. Lab. Med. 2021, 6, 702–714. [Google Scholar] [CrossRef] [PubMed]
- Meisser Redeuil, K.; Longet, K.; Benet, S.; Munari, C.; Campos-Gimenez, E. Simultaneous quantification of 21 water soluble vitamin circulating forms in human plasma by liquid chromatography-mass spectrometry. J. Chromatogr. A 2015, 1422, 89–98. [Google Scholar] [CrossRef] [PubMed]
- Harrell, F.E., Jr. Regression Modeling Strategies: With Applications to Linear Models, Logistic Regression, and Survival Analysis; Springer: New York, NY, USA, 2001. [Google Scholar]
- Ulvik, A.; Ebbing, M.; Hustad, S.; Midttun, Ø.; Nygård, O.; Vollset, S.E.; Bønaa, K.H.; Nordrehaug, J.E.; Nilsen, D.W.; Schirmer, H.; et al. Long- and short-term effects of tobacco smoking on circulating concentrations of B vitamins. Clin. Chem. 2010, 56, 755–763. [Google Scholar] [CrossRef]
- Larsson, S.C.; Orsini, N.; Wolk, A. Vitamin B6 and risk of colorectal cancer: A meta-analysis of prospective studies. JAMA 2010, 303, 1077–1083. [Google Scholar] [CrossRef]
- Choi, S.W.; Friso, S. Vitamins B6 and cancer. Subcell Biochem. 2012, 56, 247–264. [Google Scholar] [CrossRef]
- Grivennikov, S.I. Inflammation and colorectal cancer: Colitis-associated neoplasia. Semin. Immunopathol. 2013, 35, 229–244. [Google Scholar] [CrossRef]
- Federico, A.; Morgillo, F.; Tuccillo, C.; Ciardiello, F.; Loguercio, C. Chronic inflammation and oxidative stress in human carcinogenesis. Int. J. Cancer 2007, 121, 2381–2386. [Google Scholar] [CrossRef]
- Shen, J.; Lai, C.Q.; Mattei, J.; Ordovas, J.M.; Tucker, K.L. Association of vitamin B-6 status with inflammation, oxidative stress, and chronic inflammatory conditions: The Boston Puerto Rican Health Study. Am. J. Clin. Nutr. 2010, 91, 337–342. [Google Scholar] [CrossRef]
- Kiblawi, R.; Holowatyj, A.N.; Gigic, B.; Brezina, S.; Geijsen, A.; Ose, J.; Lin, T.; Hardikar, S.; Himbert, C.; Warby, C.A.; et al. One-carbon metabolites, B vitamins and associations with systemic inflammation and angiogenesis biomarkers among colorectal cancer patients: Results from the ColoCare Study. Br. J. Nutr. 2020, 123, 1187–1200. [Google Scholar] [CrossRef] [PubMed]
- Tse, J.W.T.; Jenkins, L.J.; Chionh, F.; Mariadason, J.M. Aberrant DNA Methylation in Colorectal Cancer: What Should We Target? Trends Cancer 2017, 3, 698–712. [Google Scholar] [CrossRef] [PubMed]
- Selhub, J. Folate, vitamin B12 and vitamin B6 and one carbon metabolism. J. Nutr. Health Aging 2002, 6, 39–42. [Google Scholar]
- Lin, J.H.; Zhang, S.M.; Rexrode, K.M.; Manson, J.E.; Chan, A.T.; Wu, K.; Tworoger, S.S.; Hankinson, S.E.; Fuchs, C.; Gaziano, J.M.; et al. Association between sex hormones and colorectal cancer risk in men and women. Clin. Gastroenterol. Hepatol. Off. Clin. Pract. J. Am. Gastroenterol. Assoc. 2013, 11, 419–424.e1. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Allgood, V.E.; Cidlowski, J.A. Vitamin B6 modulates transcriptional activation by multiple members of the steroid hormone receptor superfamily. J. Biol. Chem. 1992, 267, 3819–3824. [Google Scholar] [CrossRef]
- Klaunig, J.E. Oxidative Stress and Cancer. Curr. Pharm. Des. 2018, 24, 4771–4778. [Google Scholar] [CrossRef] [PubMed]
- Yanbaeva, D.G.; Dentener, M.A.; Creutzberg, E.C.; Wesseling, G.; Wouters, E.F. Systemic effects of smoking. Chest 2007, 131, 1557–1566. [Google Scholar] [CrossRef]
- Stocker, P.; Lesgards, J.F.; Vidal, N.; Chalier, F.; Prost, M. ESR study of a biological assay on whole blood: Antioxidant efficiency of various vitamins. Biochim. Et Biophys. Acta 2003, 1621, 1–8. [Google Scholar] [CrossRef]
- Wu, G.; Fang, Y.Z.; Yang, S.; Lupton, J.R.; Turner, N.D. Glutathione metabolism and its implications for health. J. Nutr. 2004, 134, 489–492. [Google Scholar] [CrossRef] [Green Version]
- Dai, Z.; Zheng, R.S.; Zou, X.N.; Zhang, S.W.; Zeng, H.M.; Li, N.; Chen, W.Q. Analysis and prediction of colorectal cancer incidence trend in China. Zhonghua Yu Fang Yi Xue Za Zhi 2012, 46, 598–603. [Google Scholar]
- Houghton, S.C.; Eliassen, A.H.; Zhang, S.M.; Selhub, J.; Rosner, B.A.; Willett, W.C.; Hankinson, S.E. Plasma B-vitamin and one-carbon metabolites and risk of breast cancer before and after folic acid fortification in the United States. Int. J. Cancer 2019, 144, 1929–1940. [Google Scholar] [CrossRef] [PubMed]
- Schernhammer, E.; Wolpin, B.; Rifai, N.; Cochrane, B.; Manson, J.A.; Ma, J.; Giovannucci, E.; Thomson, C.; Stampfer, M.J.; Fuchs, C. Plasma Folate, Vitamin B6, Vitamin B12, and Homocysteine and Pancreatic Cancer Risk in Four Large Cohorts. Cancer Res. 2007, 67, 5553–5560. [Google Scholar] [CrossRef] [PubMed] [Green Version]
Characteristics | Cases (n = 1233) | Controls (n = 1245) | P |
---|---|---|---|
Age (years) (mean ± SD) | 56.71 ± 10.23 | 56.50 ± 11.00 | 0.624 |
Sex (n, %) | 0.904 | ||
Male | 675 (54.74) | 678 (54.46) | |
Female | 558 (45.26) | 567 (45.54) | |
BMI (kg/m2) (mean ± SD) | 22.34 ± 3.05 | 23.66 ± 3.24 | <0.001 |
Marital Status (n, %) | 0.001 | ||
Married | 1166 (94.57) | 1136 (91.24) | |
Unmarried/divorces/widowed | 67 (5.43) | 109 (8.76) | |
Residence (n, %) | 0.107 | ||
Urban | 795 (64.48) | 841 (67.55) | |
Rural | 438 (35.52) | 404 (32.45) | |
Education level | 0.003 | ||
Primary school or below | 398 (32.28) | 362 (29.08) | |
Secondary school | 347 (28.14) | 335 (26.91) | |
High School | 303 (24.57) | 291 (23.37) | |
College or above | 185 (15.01) | 257 (20.64) | |
Occupation | 0.765 | ||
Administrator/other white-collar worker | 174 (14.11) | 188 (15.10) | |
Blue-collar worker | 270 (21.90) | 274 (22.01) | |
Farmer/others | 789 (64.99) | 783 (62.89) | |
Income (Yuan/month) (n, %) | <0.001 | ||
<2000 | 180 (14.60) | 378 (30.36) | |
2001–5000 | 389 (31.55) | 299 (24.02) | |
5001–8000 | 368 (29.85) | 286 (22.97) | |
>8001 | 296 (24.00) | 282 (22.65) | |
Regular smokers (n, %) | 325 (26.36) | 270 (21.69) | 0.010 |
Regular drinker (n, %) | 209 (16.95) | 228 (18.31) | 0.399 |
First-degree relative with cancer (n, %) | 162 (13.14) | 152 (12.21) | 0.487 |
Multivitamin supplement user (n, %) | 38 (3.08) | 57 (4.58) | 0.059 |
Occupational activity (n, %) | <0.001 | ||
Non-working | 153 (12.41) | 162 (13.01) | |
Sedentary | 328 (26.60) | 359 (28.84) | |
Light occupation | 327 (26.52) | 338 (27.15) | |
Moderate occupation | 233 (18.90) | 141 (11.32) | |
Heavy occupation | 192 (15.57) | 245 (19.68) | |
Household and leisure activity (MET-h/week) (mean ± SD) | 33.47 ± 27.90 | 38.69 ± 30.75 | |
<0.001 | |||
Age at menarche (years) (mean ± SD) | 14.70 ± 3.00 | 15.29 ± 2.13 | <0.001 |
Menopausal status * | 0.322 | ||
Premenopausal | 162 (29.03) | 180 (31.75) | |
Postmenopausal | 396 (70.97) | 387 (68.25) | |
Cancer site | |||
Colon | 762 (61.80) | - | |
Rectal | 471 (38.20) | - |
Cases (n = 1233) | Controls (n = 1245) | P | |
---|---|---|---|
Median (25th, 75th) | Median (25th, 75th) | ||
Dietary intake a | |||
Protein (g/day) | 62.38 (55.14–71.55) | 63.87 (55.61–71.74) | 0.145 |
Vitamin B2 (mg/day) | 0.83 (0.68–0.95) | 0.87 (0.72–1.01) | <0.001 |
Vitamin B6 (mg/day) | 0.82 (0.70–0.95) | 0.85 (0.73–0.98) | <0.001 |
Folate (μg/day) | 206.58 (178.36–240.93) | 218.75 (185.61–256.50) | <0.001 |
Vitamin B12 (μg/day) | 1.64 (1.15–2.32) | 1.87 (1.34–2.49) | <0.001 |
Methionine (mg/day) | 1163.17 (1007.82–1364.59) | 1206.14 (1031.08–1374.22) | 0.028 |
Total energy (kcal/day) | 1501.42 (1232.13–1832.94) | 1425.65 (1189.90–1724.46) | <0.001 |
Serum vitamin B6 biomarkers | |||
PLP (nmol/L) | 6.20 (3.33–11.16) | 10.06 (5.51–18.67) | <0.001 |
PL (nmol/L) | 11.76 (8.00–11.76) | 10.60 (7.27–16.48) | 0.001 |
PL plus PLP (nmol/L) | 19.11 (12.84–27.33) | 22.37 (15.44–35.35) | <0.001 |
PA (nmol/L) | 12.86 (9.90–18.87) | 12.20 (8.58–17.24) | 0.005 |
PAr | 0.67 (0.48–0.96) | 0.53 (0.36–0.79) | <0.001 |
Q1 | Q2 | Q3 | Q4 | Ptrend | |
---|---|---|---|---|---|
PLP | |||||
Median (nmol/L) | 3.26 | 7.45 | 13.05 | 28.68 | - |
Cases/controls | 562/311 | 293/312 | 253/312 | 125/310 | - |
Crude OR (95% CI) | 1.00 | 0.52 (0.42–0.64) | 0.45 (0.36–0.56) | 0.22 (0.17–0.29) | <0.001 |
Adjusted OR1 (95% CI) a | 1.00 | 0.55 (0.45–0.69) | 0.49 (0.39–0.61) | 0.24 (0.19–0.31) | <0.001 |
Adjusted OR2 (95% CI) b | 1.00 | 0.56 (0.45–0.70) | 0.49 (0.39–0.62) | 0.26 (0.20–0.33) | <0.001 |
PL plus PLP | |||||
Median (nmol/L) | 11.81 | 18.80 | 26.90 | 50.37 | - |
Cases/controls | 403/313 | 370/311 | 271/311 | 189/310 | - |
Crude OR (95% CI) | 1.00 | 0.92 (0.75–1.15) | 0.68 (0.54–0.84) | 0.47 (0.38–0.60) | <0.001 |
Adjusted OR1 (95% CI) a | 1.00 | 0.97 (0.78–1.22) | 0.72 (0.57–0.91) | 0.48 (0.38–0.61) | <0.001 |
Adjusted OR2 (95% CI) b | 1.00 | 0.97 (0.78–1.22) | 0.73 (0.58–0.92) | 0.51 (0.40–0.66) | <0.001 |
PAr | |||||
Median | 0.28 | 0.45 | 0.64 | 1.05 | - |
Cases/controls | 161/311 | 250/312 | 341/311 | 481/311 | - |
Crude OR (95% CI) | 1.00 | 1.54 (1.20–1.99) | 2.12 (1.66–2.71) | 3.00 (2.36–3.79) | <0.001 |
Adjusted OR1 (95% CI) a | 1.00 | 1.57 (1.20–2.04) | 2.16 (1.67–2.78) | 3.00 (2.34–3.85) | <0.001 |
Adjusted OR2 (95% CI) b | 1.00 | 1.52 (1.16–1.99) | 2.16 (1.66–2.80) | 2.90 (2.25–3.75) | <0.001 |
Q1 | Q2 | Q3 | Q4 | Ptrend | Pinteraction | |
---|---|---|---|---|---|---|
PLP | ||||||
Male | 0.001 | |||||
Median (nmol/L) | 3.71 | 8.71 | 14.37 | 31.18 | ||
Cases/controls | 361/169 | 155/170 | 104/170 | 55/169 | ||
Adjusted OR (95% CI) a | 1.00 | 0.46 (0.34–0.64) | 0.30 (0.21-0.42) | 0.15 (0.10–0.22) | <0.001 | |
Female | ||||||
Median (nmol/L) | 2.77 | 6.16 | 11.36 | 26.89 | ||
Cases/controls | 201/142 | 138/142 | 149/142 | 70/141 | ||
Adjusted OR (95% CI) a | 1.00 | 0.67 (0.48–0.94) | 0.77 (0.55–1.07) | 0.39 (0.27–0.57) | <0.001 | |
Never smokers | 0.008 | |||||
Median (nmol/L) | 3.00 | 6.85 | 12.60 | 28.45 | ||
Cases/controls | 290/199 | 183/204 | 186/208 | 84/209 | ||
Adjusted OR (95% CI) b | 1.00 | 0.59 (0.45–0.79) | 0.63 (0.47–0.83) | 0.30 (0.22–0.42) | <0.001 | |
Regular smokers | ||||||
Median (nmol/L) | 3.61 | 8.64 | 14.06 | 27.47 | ||
Cases/controls | 182/68 | 80/73 | 37/66 | 26/63 | ||
Adjusted OR (95% CI) b | 1.00 | 0.50 (0.31–0.80) | 0.26 (0.15–0.46) | 0.14 (0.08–0.26) | <0.001 | |
PL plus PLP | ||||||
Male | 0.791 | |||||
Median (nmol/L) | 11.57 | 18.47 | 25.71 | 48.47 | ||
Cases/controls | 215/169 | 201/170 | 149/170 | 110/169 | ||
Adjusted OR (95% CI) a | 1.00 | 1.11 (0.80–1.53) | 0.76 (0.54–1.06) | 0.53 (0.37–0.75) | <0.001 | |
Female | ||||||
Median (nmol/L) | 12.10 | 19.26 | 28.24 | 52.66 | ||
Cases/controls | 188/144 | 169/141 | 122/141 | 79/141 | ||
Adjusted OR (95% CI) a | 1.00 | 0.87 (0.62–1.20) | 0.67 (0.48–0.95) | 0.46 (0.31–0.67) | 0.001 | |
Never smokers | ||||||
Median (nmol/L) | 12.00 | 19.06 | 27.65 | 51.11 | 0.947 | |
Cases/controls | 244/201 | 222/210 | 168/205 | 109/204 | ||
Adjusted OR (95% CI) b | 1.00 | 0.86 (0.65–1.14) | 0.70 (0.52–0.94) | 0.48 (0.35–0.66) | <0.001 | |
Regular smokers | ||||||
Median (nmol/L) | 11.59 | 18.27 | 25.97 | 48.60 | ||
Cases/controls | 111/66 | 97/68 | 70/71 | 47/65 | ||
Adjusted OR (95% CI) b | 1.00 | 1.26 (0.76–2.07) | 0.85 (0.50–1.42) | 0.47 (0.27–0.82) | 0.006 | |
PAr | ||||||
Male | 0.001 | |||||
Median | 0.28 | 0.43 | 0.61 | 1.00 | ||
Cases/controls | 82/169 | 95/170 | 200/170 | 298/169 | ||
Adjusted OR (95% CI) a | 1.00 | 1.19 (0.80–1.79) | 3.01 (2.06–4.39) | 3.86 (2.68–5.57) | <0.001 | |
Female | ||||||
Median | 0.27 | 0.48 | 0.69 | 1.09 | ||
Cases/controls | 79/142 | 154/142 | 142/141 | 183/142 | ||
Adjusted OR (95% CI) a | 1.00 | 1.90 (1.30–2.77) | 1.77 (1.20–2.59) | 2.35 (1.62–3.42) | <0.001 | |
Never smokers | 0.018 | |||||
Median | 0.28 | 0.46 | 0.67 | 1.07 | ||
Cases/controls | 100/203 | 184/205 | 192/213 | 267/199 | ||
Adjusted OR (95% CI) b | 1.00 | 1.72 (1.24–2.38) | 1.78 (1.29–2.46) | 2.69 (1.96–3.70) | <0.001 | |
Regular smokers | ||||||
Median | 0.27 | 0.44 | 0.61 | 0.98 | ||
Cases/controls | 41/75 | 37/65 | 103/63 | 144/67 | ||
Adjusted OR (95% CI) b | 1.00 | 1.04 (0.56–1.95) | 4.09 (2.30–7.27) | 4.29 (2.46–7.47) | <0.001 |
Colon Cancer (n = 762) | Rectal Cancer (n = 471) | Pheterogeneity | |||
---|---|---|---|---|---|
Cases/Controls | Adjusted OR (95% CI) a | Cases/Controls | Adjusted OR (95% CI) a | ||
PLP | 0.051 | ||||
Q1 | 365/311 | 1.00 | 197/311 | 1.00 | |
Q2 | 170/312 | 0.49 (0.38–0.64) | 123/312 | 0.69 (0.52–0.92) | |
Q3 | 144/312 | 0.43 (0.33–0.56) | 109/312 | 0.61 (0.45–0.83) | |
Q4 | 83/310 | 0.26 (0.19–0.35) | 42/310 | 0.25 (0.17–0.37) | |
Ptrend | <0.001 | <0.001 | |||
PL plus PLP | 0.994 | ||||
Q1 | 251/313 | 1.00 | 152/313 | 1.00 | |
Q2 | 228/312 | 1.00 (0.77–1.29) | 142/311 | 0.95 (0.71–1.27) | |
Q3 | 166/311 | 0.72 (0.55–0.94) | 105/311 | 0.75 (0.55–1.02) | |
Q4 | 117/310 | 0.52 (0.39–0.69) | 72/310 | 0.51 (0.36–0.71) | |
Ptrend | <0.001 | <0.001 | |||
PAr | 0.180 | ||||
Q1 | 97/311 | 1.00 | 64/311 | 1.00 | |
Q2 | 141/312 | 1.39 (1.01–1.91) | 108/312 | 1.66 (1.15–2.39) | |
Q3 | 212/311 | 2.16 (1.60–2.93) | 130/311 | 2.09 (1.46–2.98) | |
Q4 | 312/311 | 3.07 (2.29–4.11) | 169/311 | 2.48 (1.75–3.51) | |
Ptrend | <0.001 | <0.001 |
Publisher’s Note: MDPI stays neutral with regard to jurisdictional claims in published maps and institutional affiliations. |
© 2022 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Xu, L.; Fang, Y.-J.; Che, M.-M.; Abulimiti, A.; Huang, C.-Y.; Zhang, C.-X. Association of Serum Pyridoxal-5′-Phosphate, Pyridoxal, and PAr with Colorectal Cancer Risk: A Large-Scale Case-Control Study. Nutrients 2022, 14, 2389. https://doi.org/10.3390/nu14122389
Xu L, Fang Y-J, Che M-M, Abulimiti A, Huang C-Y, Zhang C-X. Association of Serum Pyridoxal-5′-Phosphate, Pyridoxal, and PAr with Colorectal Cancer Risk: A Large-Scale Case-Control Study. Nutrients. 2022; 14(12):2389. https://doi.org/10.3390/nu14122389
Chicago/Turabian StyleXu, Lei, Yu-Jing Fang, Meng-Meng Che, Alinuer Abulimiti, Chu-Yi Huang, and Cai-Xia Zhang. 2022. "Association of Serum Pyridoxal-5′-Phosphate, Pyridoxal, and PAr with Colorectal Cancer Risk: A Large-Scale Case-Control Study" Nutrients 14, no. 12: 2389. https://doi.org/10.3390/nu14122389
APA StyleXu, L., Fang, Y. -J., Che, M. -M., Abulimiti, A., Huang, C. -Y., & Zhang, C. -X. (2022). Association of Serum Pyridoxal-5′-Phosphate, Pyridoxal, and PAr with Colorectal Cancer Risk: A Large-Scale Case-Control Study. Nutrients, 14(12), 2389. https://doi.org/10.3390/nu14122389