Showing posts with label metabolic health. Show all posts
Showing posts with label metabolic health. Show all posts

Tuesday, August 22, 2023

Intermittent Fasting Benefits:

The practice of intermittent fasting for therapeutic purposes is increasing. Some of the benefits of intermittent fasting include reduced insulin resistance and improved glucose homeostasis, reduced blood lipids (including triglycerides and LDL), and increased fat burning. Health care practitioners are likely to encounter questions regarding the safety and efficacy of intermittent fasting. In this blog post, Sara Gottfried, MD and Kari Hamrick, PhD, RD walk through new clinical research on the benefits of intermittent fasting for health and longevity.

 Fasting and Insulin resistance   follow the link 



Tuesday, May 16, 2023

Chrononutrition: Food timing, circadian fasting...

 

Chrononutrition: Food Timing, Circadian Fasting, and Resetting the Body’s Internal Clock

Circadian cycles are part of the body’s internal clock, and disruption to these biological rhythms may result in adverse health outcomes. Aligning meal timing with the body’s circadian cycle for optimal glucose and insulin responsiveness may be effective for improving metabolic health. In the field of chrononutrition, time-restricted feeding has been prominent in research, studied for its benefits on metabolic health and as a means for realigning and supporting the body’s internal clock. How do circadian considerations potentially benefit personalized health interventions for chronic disease treatment or prevention?


Timing influences human physiology. Circadian cycles are a property of the body’s internal clock, and disruption to these biological rhythms may result in adverse health outcomes. The field of chronobiology is dynamic and continues to elucidate the associations between circadian rhythms and health implications, from neurodegenerative risks to metabolic dysfunctions.1,2 Chrononutrition is the focused study of the relationship between food, metabolism, meal timing, and the circadian system. Is there metabolic benefit when aligning lifestyle behaviors such as food timing with the body’s internal clock? How do circadian considerations influence personalized health interventions for chronic disease prevention or treatment?

Aligning Food Timing With Circadian Rhythms

Most cells and tissues of the body show molecular clock activity and express cellular clock genes that contribute to tissue and system function. In metabolic processes, circadian-related components modulate the activation and expression of hormones, enzymes, and signaling pathways.3,4 Aligning meal timing with the body’s circadian cycle for optimal glucose and insulin responsiveness, as well as with hormones such as cortisol and leptin that are also affected by circadian oscillations,3 may be effective for improving metabolic health. A 2023 meta-analysis of nine RCTs (n=485 total participants) compared higher energy consumption earlier in the day with higher consumption later in the day on weight loss and metabolic parameters.5 Researchers reported a significantly greater weight loss in groups with higher energy intakes earlier compared to groups with high energy intake later in the day. In addition, significantly greater reductions in LDL cholesterol, fasting glucose, and insulin resistance (measured by HOMA-IR) were reported in groups with earlier energy intakes compared with later intakes.5

Both glucose tolerance and insulin sensitivity have been shown to be lower in the evening than in the morning,6which may contribute to an increased risk of metabolic dysfunctions for those who habitually eat meals during the evening hours. A 2020 meta-analysis (n=10 acute postprandial studies) investigated whether acute glucose and insulin responses after night-time meals (8 pm–4 am) differed from the responses after day-time meals (7 am–4 pm) in healthy adults.7 Results indicated that after an identical meal, the postprandial glucose and insulin responses were both significantly lower in the day compared to the night.7 Interestingly, specific to carbohydrate intake, a 2022 systematic review of eight randomized clinical trials (n=116 healthy adults) indicated that consumption of carbohydrates at night also led to higher postprandial glycemic values than morning consumption; however, no significant difference between morning and night carbohydrate consumption was found for postprandial insulin values.8

TIME-RESTRICTED FEEDING & CIRCADIAN REALIGNMENT

As the field of chrononutrition continues to expand and develop, time-restricted feeding (TRF) has been prominent in research, studied for its benefits on metabolic health and as a means for realigning and supporting the body’s circadian clock.9,10 As a form of circadian fasting, TRF is a dietary pattern that optimizes circadian elements by consuming food and beverage within a shortened window of time during the day, extending a person’s nightly fast to 12 hours or more. A 2022 systematic review of 22 TRF-related randomized controlled trials suggested that among adults with overweight/obesity, TRF may lead to improved insulin resistance and glycemic responsiveness throughout the day.11 Of note, most of the reviewed studies assessed the effects of a 16-hour fast/8-hour feeding regimen (day-time feeding window variable), with only one included study comparing the early TRF (eating between 6 am and 3 pm) with the mid-day TRF (eating between 11 am and 8 pm).11

Synchronizing lifestyle habits such as food timing with circadian biological rhythms has been studied in a range of health areas, including the management of non-alcoholic fatty liver disease,12,13 the reduction of blood pressure,14inflammation,15 reduced cognitive decline,16 and cancer risk.17 Evaluating the feasibility of this therapeutic nutritional approach continues to evolve. A recent pilot study tested the feasibility of implementing TRF in adults with overweight and obesity through a smartphone intervention.18 Fifty participants with a normal eating duration of 14 hours or more were enrolled. After the 90-day TRF trial, the average adherence to logging meal activities and to reducing eating windows was 64% and 47% respectively.18 Of note, 16 of the TRF participants reduced their eating window from an average of 16 hours to approximately 12 hours. In addition, decreases in body weight, waist circumference, and systolic blood pressure were reported.18

Chronotype & Personalized Nutrition

It is important to note that some patients may not be suitable candidates for therapeutic fasting treatments due to preexisting conditions. However, for some patients, TRF interventions that optimize circadian elements by encouraging energy intake earlier in the day and increasing the fasting window have the potential to improve metabolic outcomes.

As research develops, determining the optimal time period for TRF interventions (early TRF versus mid-day TRF) may be clarified. Ultimately, ideal eating times and habits could be associated with a patient’s chronotype. Genetic variations in clock genes contribute to varied circadian inclinations among individuals and may impact best sleep and meal schedules for any given person. Specific chronotypes, for example, an “early-bird” or “night-owl,” describes not only at what time a person is naturally inclined to sleep and to be awake but may also influence appetite and physical activity.19,20 Studies continue to investigate the impact of chronotype on disease development,21 and chrononutrition trials are beginning to explore chronotype influences on interventions for improved metabolic health.22

As part of a personalized, lifestyle-based approach, nutritional therapies tailored to the individual patient are crucial for effectiveness and sustainability. Circadian rhythms are just one component to consider when creating and implementing dietary interventions. A variety of factors such as potential underlying nutrient deficiencies, presentation of disease symptoms, food sensitivities, accessibility, and personal preferences may all shape personalized treatments. IFM’s suite of therapeutic food plans are all available for modification based on an individual’s health needs. Learn more about food plan personalization within the IFM framework and creating effective and sustainable nutrition-based strategies to promote health through the online course Therapeutic Food Plans: A Component of Personalized Nutrition.

Source: <https://www.ifm.org/news-insights/chrononutrition-food-timing-circadian-fasting-and-the-bodys-internal-clock/?utm_campaign=Newsletter&utm_medium=email&_hsmi=251085985&_hsenc=p2ANqtz-8T_k3YJCFivLIRpT-UCW4IK1x8vKKGfijKRnr4-astzNGhHDqTj9WiCepB_vUcJE-ZK70SXU68vmHZtY9rEmT8JsGpZA&utm_content=251085983&utm_source=hs_email>

References:

  • 1) Leng Y, Musiek ES, Hu K, Cappuccio FP, Yaffe K. Association between circadian rhythms and neurodegenerative diseases. Lancet Neurol. 2019;18(3):307-318. doi:1016/S1474-4422(18)30461-7
  • 2) Chaput JP, McHill AW, Cox RC, et al. The role of insufficient sleep and circadian misalignment in obesity. Nat Rev Endocrinol. 2023;19(2):82-97. doi:1038/s41574-022-00747-7
  • 3) Serin Y, Acar Tek N. Effect of circadian rhythm on metabolic processes and the regulation of energy balance. Ann Nutr Metab. 2019;74(4):322-330. doi:1159/000500071
  • 4) Flanagan A, Bechtold DA, Pot GK, Johnston JD. Chrono-nutrition: From molecular and neuronal mechanisms to human epidemiology and timed feeding patterns. J Neurochem. 2021;157(1):53-72. doi:1111/jnc.15246
  • 5) Young IE, Poobalan A, Steinbeck K, O’Connor HT, Parker HM. Distribution of energy intake across the day and weight loss: a systematic review and meta-analysis. Obes Rev. 2023;24(3):e13537. doi:1111/obr.13537
  • 6) Mason IC, Qian J, Adler GK, Scheer FAJL. Impact of circadian disruption on glucose metabolism: implications for type 2 diabetes. Diabetologia. 2020;63(3):462-472. doi:1007/s00125-019-05059-6
  • 7) Leung GKW, Huggins CE, Ware RS, Bonham MP. Time of day difference in postprandial glucose and insulin responses: systematic review and meta-analysis of acute postprandial studies. Chronobiol Int. 2020;37(3):311-326. doi:1080/07420528.2019.1683856
  • 8) de Almeida RS, Marot LP, Latorraca COC, Oliveira RÁ, Crispim CA. Is evening carbohydrate intake in healthy individuals associated with higher postprandial glycemia and insulinemia when compared to morning intake? A systematic review and meta-analysis of randomized crossover studies. J Am Nutr Assoc. Published online March 1, 2022. doi:1080/07315724.2022.2043199
  • 9) Adafer R, Messaadi W, Meddahi M, et al. Food timing, circadian rhythm and chrononutrition: a systematic review of time-restricted eating’s effects on human health. Nutrients. 2020;12(12):3770. doi:3390/nu12123770
  •  10) Zeb F, Wu X, Fatima S, et al. Time-restricted feeding regulates molecular mechanisms with involvement of circadian rhythm to prevent metabolic diseases. Nutrition. 2021;89:111244. doi:1016/j.nut.2021.111244
  •  11) Tsitsou S, Zacharodimos N, Poulia KA, Karatzi K, Dimitriadis G, Papakonstantinou E. Effects of time-restricted feeding and Ramadan fasting on body weight, body composition, glucose responses, and insulin resistance: a systematic review of randomized controlled trials. Nutrients. 2022;14(22):4778. doi:3390/nu14224778
  •  12) Perez-Diaz-Del-Campo N, Castelnuovo G, Caviglia GP, Armandi A, Rosso C, Bugianesi E. Role of circadian clock on the pathogenesis and lifestyle management in non-alcoholic fatty liver disease. Nutrients. 2022;14(23):5053. doi:3390/nu14235053
  • 13) Kord-Varkaneh H, Salehi-Sahlabadi A, Tinsley GM, Santos HO, Hekmatdoost A. Effects of time-restricted feeding (16/8) combined with a low-sugar diet on the management of non-alcoholic fatty liver disease: a randomized controlled trial. Nutrition. 2023;105:111847. doi:1016/j.nut.2022.111847
  •  14) Xie Z, He Z, Ye Y, Mao Y. Effects of time-restricted feeding with different feeding windows on metabolic health: a systematic review of human studies. Nutrition. 2022;102:111764. doi:1016/j.nut.2022.111764
  •  15) Ramos-Lopez O, Martinez-Urbistondo D, Vargas-Nuñez JA, Martinez JA. The role of nutrition on meta-inflammation: insights and potential targets in communicable and chronic disease management. Curr Obes Rep. 2022;11(4):305-335. doi:1007/s13679-022-00490-0
  •  16) Currenti W, Godos J, Castellano S, et al. Association between time restricted feeding and cognitive status in older Italian adults. Nutrients. 2021;13(1):191. doi:3390/nu13010191
  •  17) Palomar-Cros A, Espinosa A, Straif K, et al. The association of nighttime fasting duration and prostate cancer risk: results from the Multicase-Control (MCC) study in Spain. Nutrients. 2021;13(8):2662. doi:3390/nu13082662
  •  18)Prasad M, Fine K, Gee A, et al. A smartphone intervention to promote time restricted eating reduces body weight and blood pressure in adults with overweight and obesity: a pilot study. Nutrients. 2021;13(7):2148. doi:3390/nu13072148
  •  19) Beaulieu K, Oustric P, Alkahtani S, et al. Impact of meal timing and chronotype on food reward and appetite control in young adults. Nutrients. 2020;12(5):1506. doi:3390/nu12051506
  •  20) Sempere-Rubio N, Aguas M, Faubel R. Association between chronotype, physical activity and sedentary behaviour: a systematic review. Int J Environ Res Public Health. 2022;19(15):9646. doi:3390/ijerph19159646
  •  21) Barrea L, Vetrani C, Altieri B, et al. The importance of being a ‘lark’ in post-menopausal women with obesity: a ploy to prevent type 2 diabetes mellitus? Nutrients. 2021;13(11):3762. doi:3390/nu13113762
  •  22) Mazri FH, Manaf ZA, Shahar S, Mat Ludin AF, Abdul Basir SM. Development and evaluation of integrated chrono-nutrition weight reduction program among overweight/obese with morning and evening chronotypes. Int J Environ Res Public Health. 2022;19(8):4469. doi:3390/ijerph19084469
  • Tuesday, March 28, 2023

    Time restricted eating...Aligning food timing with circadian rhythms

     If you needed more motivation to start a time restricted eating program...here you go. Another great article from the Institute of Functional Medicine...

    Chrononutrition: Food Timing, Circadian Fasting, and Resetting the Body’s Internal Clock

    Circadian cycles are part of the body’s internal clock, and disruption to these biological rhythms may result in adverse health outcomes. Aligning meal timing with the body’s circadian cycle for optimal glucose and insulin responsiveness may be effective for improving metabolic health. In the field of chrononutrition, time-restricted feeding has been prominent in research, studied for its benefits on metabolic health and as a means for realigning and supporting the body’s internal clock. How do circadian considerations potentially benefit personalized health interventions for chronic disease treatment or prevention?


    Timing influences human physiology. Circadian cycles are a property of the body’s internal clock, and disruption to these biological rhythms may result in adverse health outcomes. The field of chronobiology is dynamic and continues to elucidate the associations between circadian rhythms and health implications, from neurodegenerative risks to metabolic dysfunctions.1,2 Chrononutrition is the focused study of the relationship between food, metabolism, meal timing, and the circadian system. Is there metabolic benefit when aligning lifestyle behaviors such as food timing with the body’s internal clock? How do circadian considerations influence personalized health interventions for chronic disease prevention or treatment?

    Aligning Food Timing With Circadian Rhythms

    Most cells and tissues of the body show molecular clock activity and express cellular clock genes that contribute to tissue and system function. In metabolic processes, circadian-related components modulate the activation and expression of hormones, enzymes, and signaling pathways.3,4 Aligning meal timing with the body’s circadian cycle for optimal glucose and insulin responsiveness, as well as with hormones such as cortisol and leptin that are also affected by circadian oscillations,3 may be effective for improving metabolic health. A 2023 meta-analysis of nine RCTs (n=485 total participants) compared higher energy consumption earlier in the day with higher consumption later in the day on weight loss and metabolic parameters.5 Researchers reported a significantly greater weight loss in groups with higher energy intakes earlier compared to groups with high energy intake later in the day. In addition, significantly greater reductions in LDL cholesterol, fasting glucose, and insulin resistance (measured by HOMA-IR) were reported in groups with earlier energy intakes compared with later intakes.5

    Both glucose tolerance and insulin sensitivity have been shown to be lower in the evening than in the morning,6which may contribute to an increased risk of metabolic dysfunctions for those who habitually eat meals during the evening hours. A 2020 meta-analysis (n=10 acute postprandial studies) investigated whether acute glucose and insulin responses after night-time meals (8 pm–4 am) differed from the responses after day-time meals (7 am–4 pm) in healthy adults.7 Results indicated that after an identical meal, the postprandial glucose and insulin responses were both significantly lower in the day compared to the night.7 Interestingly, specific to carbohydrate intake, a 2022 systematic review of eight randomized clinical trials (n=116 healthy adults) indicated that consumption of carbohydrates at night also led to higher postprandial glycemic values than morning consumption; however, no significant difference between morning and night carbohydrate consumption was found for postprandial insulin values.8

    TIME-RESTRICTED FEEDING & CIRCADIAN REALIGNMENT

    As the field of chrononutrition continues to expand and develop, time-restricted feeding (TRF) has been prominent in research, studied for its benefits on metabolic health and as a means for realigning and supporting the body’s circadian clock.9,10 As a form of circadian fasting, TRF is a dietary pattern that optimizes circadian elements by consuming food and beverage within a shortened window of time during the day, extending a person’s nightly fast to 12 hours or more. A 2022 systematic review of 22 TRF-related randomized controlled trials suggested that among adults with overweight/obesity, TRF may lead to improved insulin resistance and glycemic responsiveness throughout the day.11 Of note, most of the reviewed studies assessed the effects of a 16-hour fast/8-hour feeding regimen (day-time feeding window variable), with only one included study comparing the early TRF (eating between 6 am and 3 pm) with the mid-day TRF (eating between 11 am and 8 pm).11

    Synchronizing lifestyle habits such as food timing with circadian biological rhythms has been studied in a range of health areas, including the management of non-alcoholic fatty liver disease,12,13 the reduction of blood pressure,14inflammation,15 reduced cognitive decline,16 and cancer risk.17 Evaluating the feasibility of this therapeutic nutritional approach continues to evolve. A recent pilot study tested the feasibility of implementing TRF in adults with overweight and obesity through a smartphone intervention.18 Fifty participants with a normal eating duration of 14 hours or more were enrolled. After the 90-day TRF trial, the average adherence to logging meal activities and to reducing eating windows was 64% and 47% respectively.18 Of note, 16 of the TRF participants reduced their eating window from an average of 16 hours to approximately 12 hours. In addition, decreases in body weight, waist circumference, and systolic blood pressure were reported.18

    Chronotype & Personalized Nutrition

    It is important to note that some patients may not be suitable candidates for therapeutic fasting treatments due to preexisting conditions. However, for some patients, TRF interventions that optimize circadian elements by encouraging energy intake earlier in the day and increasing the fasting window have the potential to improve metabolic outcomes.

    As research develops, determining the optimal time period for TRF interventions (early TRF versus mid-day TRF) may be clarified. Ultimately, ideal eating times and habits could be associated with a patient’s chronotype. Genetic variations in clock genes contribute to varied circadian inclinations among individuals and may impact best sleep and meal schedules for any given person. Specific chronotypes, for example, an “early-bird” or “night-owl,” describes not only at what time a person is naturally inclined to sleep and to be awake but may also influence appetite and physical activity.19,20 Studies continue to investigate the impact of chronotype on disease development,21 and chrononutrition trials are beginning to explore chronotype influences on interventions for improved metabolic health.22

    As part of a personalized, lifestyle-based approach, nutritional therapies tailored to the individual patient are crucial for effectiveness and sustainability. Circadian rhythms are just one component to consider when creating and implementing dietary interventions. A variety of factors such as potential underlying nutrient deficiencies, presentation of disease symptoms, food sensitivities, accessibility, and personal preferences may all shape personalized treatments. IFM’s suite of therapeutic food plans are all available for modification based on an individual’s health needs. Learn more about food plan personalization within the IFM framework and creating effective and sustainable nutrition-based strategies to promote health through the online course Therapeutic Food Plans: A Component of Personalized Nutrition.

    Source: <https://www.ifm.org/news-insights/chrononutrition-food-timing-circadian-fasting-and-the-bodys-internal-clock/?utm_campaign=Newsletter&utm_medium=email&_hsmi=251085985&_hsenc=p2ANqtz-8T_k3YJCFivLIRpT-UCW4IK1x8vKKGfijKRnr4-astzNGhHDqTj9WiCepB_vUcJE-ZK70SXU68vmHZtY9rEmT8JsGpZA&utm_content=251085983&utm_source=hs_email>

    References:

  • 1) Leng Y, Musiek ES, Hu K, Cappuccio FP, Yaffe K. Association between circadian rhythms and neurodegenerative diseases. Lancet Neurol. 2019;18(3):307-318. doi:1016/S1474-4422(18)30461-7
  • 2) Chaput JP, McHill AW, Cox RC, et al. The role of insufficient sleep and circadian misalignment in obesity. Nat Rev Endocrinol. 2023;19(2):82-97. doi:1038/s41574-022-00747-7
  • 3) Serin Y, Acar Tek N. Effect of circadian rhythm on metabolic processes and the regulation of energy balance. Ann Nutr Metab. 2019;74(4):322-330. doi:1159/000500071
  • 4) Flanagan A, Bechtold DA, Pot GK, Johnston JD. Chrono-nutrition: From molecular and neuronal mechanisms to human epidemiology and timed feeding patterns. J Neurochem. 2021;157(1):53-72. doi:1111/jnc.15246
  • 5) Young IE, Poobalan A, Steinbeck K, O’Connor HT, Parker HM. Distribution of energy intake across the day and weight loss: a systematic review and meta-analysis. Obes Rev. 2023;24(3):e13537. doi:1111/obr.13537
  • 6) Mason IC, Qian J, Adler GK, Scheer FAJL. Impact of circadian disruption on glucose metabolism: implications for type 2 diabetes. Diabetologia. 2020;63(3):462-472. doi:1007/s00125-019-05059-6
  • 7) Leung GKW, Huggins CE, Ware RS, Bonham MP. Time of day difference in postprandial glucose and insulin responses: systematic review and meta-analysis of acute postprandial studies. Chronobiol Int. 2020;37(3):311-326. doi:1080/07420528.2019.1683856
  • 8) de Almeida RS, Marot LP, Latorraca COC, Oliveira RÁ, Crispim CA. Is evening carbohydrate intake in healthy individuals associated with higher postprandial glycemia and insulinemia when compared to morning intake? A systematic review and meta-analysis of randomized crossover studies. J Am Nutr Assoc. Published online March 1, 2022. doi:1080/07315724.2022.2043199
  • 9) Adafer R, Messaadi W, Meddahi M, et al. Food timing, circadian rhythm and chrononutrition: a systematic review of time-restricted eating’s effects on human health. Nutrients. 2020;12(12):3770. doi:3390/nu12123770
  •  10) Zeb F, Wu X, Fatima S, et al. Time-restricted feeding regulates molecular mechanisms with involvement of circadian rhythm to prevent metabolic diseases. Nutrition. 2021;89:111244. doi:1016/j.nut.2021.111244
  •  11) Tsitsou S, Zacharodimos N, Poulia KA, Karatzi K, Dimitriadis G, Papakonstantinou E. Effects of time-restricted feeding and Ramadan fasting on body weight, body composition, glucose responses, and insulin resistance: a systematic review of randomized controlled trials. Nutrients. 2022;14(22):4778. doi:3390/nu14224778
  •  12) Perez-Diaz-Del-Campo N, Castelnuovo G, Caviglia GP, Armandi A, Rosso C, Bugianesi E. Role of circadian clock on the pathogenesis and lifestyle management in non-alcoholic fatty liver disease. Nutrients. 2022;14(23):5053. doi:3390/nu14235053
  • 13) Kord-Varkaneh H, Salehi-Sahlabadi A, Tinsley GM, Santos HO, Hekmatdoost A. Effects of time-restricted feeding (16/8) combined with a low-sugar diet on the management of non-alcoholic fatty liver disease: a randomized controlled trial. Nutrition. 2023;105:111847. doi:1016/j.nut.2022.111847
  •  14) Xie Z, He Z, Ye Y, Mao Y. Effects of time-restricted feeding with different feeding windows on metabolic health: a systematic review of human studies. Nutrition. 2022;102:111764. doi:1016/j.nut.2022.111764
  •  15) Ramos-Lopez O, Martinez-Urbistondo D, Vargas-Nuñez JA, Martinez JA. The role of nutrition on meta-inflammation: insights and potential targets in communicable and chronic disease management. Curr Obes Rep. 2022;11(4):305-335. doi:1007/s13679-022-00490-0
  •  16) Currenti W, Godos J, Castellano S, et al. Association between time restricted feeding and cognitive status in older Italian adults. Nutrients. 2021;13(1):191. doi:3390/nu13010191
  •  17) Palomar-Cros A, Espinosa A, Straif K, et al. The association of nighttime fasting duration and prostate cancer risk: results from the Multicase-Control (MCC) study in Spain. Nutrients. 2021;13(8):2662. doi:3390/nu13082662
  •  18)Prasad M, Fine K, Gee A, et al. A smartphone intervention to promote time restricted eating reduces body weight and blood pressure in adults with overweight and obesity: a pilot study. Nutrients. 2021;13(7):2148. doi:3390/nu13072148
  •  19) Beaulieu K, Oustric P, Alkahtani S, et al. Impact of meal timing and chronotype on food reward and appetite control in young adults. Nutrients. 2020;12(5):1506. doi:3390/nu12051506
  •  20) Sempere-Rubio N, Aguas M, Faubel R. Association between chronotype, physical activity and sedentary behaviour: a systematic review. Int J Environ Res Public Health. 2022;19(15):9646. doi:3390/ijerph19159646
  •  21) Barrea L, Vetrani C, Altieri B, et al. The importance of being a ‘lark’ in post-menopausal women with obesity: a ploy to prevent type 2 diabetes mellitus? Nutrients. 2021;13(11):3762. doi:3390/nu13113762
  •  22) Mazri FH, Manaf ZA, Shahar S, Mat Ludin AF, Abdul Basir SM. Development and evaluation of integrated chrono-nutrition weight reduction program among overweight/obese with morning and evening chronotypes. Int J Environ Res Public Health. 2022;19(8):4469. doi:3390/ijerph19084469

  • Related Articles

    CHRONOBIOLOGY: THE DYNAMIC FIELD OF RHYTHM AND CLOCK GENES

    CIRCADIAN FASTING & PRECURSORS TO HEART HEALTH

    PERSONALIZING NUTRITIONAL INTERVENTIONS

    Wednesday, March 22, 2023

    We consume toxic chemicals without knowing it...

     

    If the pandemic served as a window into our health, what it revealed was a US population that is not only sick but also seemingly only getting sicker. Life expectancy is falling precipitously. Three fourths of Americans are overweight or obese, half have diabetes or prediabetes, and a majority are metabolically unhealthy. Furthermore, the rates of allergic, inflammatory, and autoimmune diseases are rising at rates of 3%-9% per year in the West, far faster than the speed of genetic change in this population.

    Of course, diet and lifestyle are major factors behind such trends, but a grossly underappreciated driver in what ails us is the role of environmental toxins and endocrine-disrupting chemicals. In years past, these factors have largely evaded the traditional Western medical establishment; however, mounting evidence now supports their significance in fertility, metabolic health, and cancer.

    Although several industrial chemicals and toxins have been identified as carcinogens and have subsequently been regulated, many more remain persistent in the environment and continue to be freely used. It is therefore incumbent upon both the general public and clinicians to be knowledgeable about these exposures. Here, we review some of the most common exposures and the substantial health risks associated with them, along with some general guidance around best practices for how to minimize exposure.

    Microplastics 

    "Microplastics" is a term used to describe small fragments or particles of plastic breakdown or microbeads from household or personal care products, measuring less than 5 mm in length.

    Plastic waste is accumulating at alarming and devastating proportions — by 2050, it is estimated that by weight, there will be more plastic than fish in the oceans. That translates into hundreds of thousands of tons of microplastics and trillions of these particles in the seas. A recent study demonstrated that microplastics were present in the bloodstream in the majority of 22 otherwise healthy participants.

    Since the 1950s, plastic exposure has been shown to promote tumorigenesis in animal studies, and in vitro studies have demonstrated the toxicity of microplastics at the cellular level. However, it is not well known whether the plastic itself is toxic or if it simply serves as a carrier for other environmental toxins to bioaccumulate.

    According to Tasha Stoiber, a senior scientist at the Environmental Working Group (EWG), "Microplastics have been widely detected in fish and seafood, as well as other products like bottled water, beer, honey, and tap water." EWG states there are no formal advisories on fish consumption to avoid exposure to microplastics at the moment.

    Pressure also is mounting for a ban on microbeads in personal care products.

    Until such bans are put in place, it is advised to avoid single-use plastics, favor reusable tote bags for grocery shopping rather than plastic bags, and opt for loose leaf tea or paper tea bags rather than mesh-based alternatives.

    Phthalates 

    Phthalates are chemicals used to make plastics soft and durable, as well as to bind fragrances. They are commonly found in household items such as vinyl (eg, flooring, shower curtains) and fragrances, air fresheners, and perfumes.

    Phthalates are known hormone-disrupting chemicals, exposure to which has been associated with abnormal sexual and brain development in children, as well as lower levels of testosterone in men. Exposures are thought to occur via inhalation, ingestion, and skin contact; however, fasting studies demonstrate that a majority of exposure is probably food related.

    To avoid phthalate exposures, recommendations include avoiding polyvinyl chloride plastics (particularly food containers, plastic wrap, and children's toys), which is identifiable by the recycle code number 3, as well as air fresheners and fragranced products.

    The EWG's Skin Deep database provides an important resource on phthalate-free personal care products.

    Despite pressure from consumer advocacy groups, the US Food and Drug Administration has not yet banned phthalates in food packaging.

    Bisphenol A (BPA) 

    BPA is a chemical additive used to make clear and hard polycarbonate plastics, as well as epoxy and thermal papers. BPA is one of the highest-volume chemicals, with roughly 6 billion pounds produced each year. BPA is traditionally found in many clear plastic bottles and sippy cups, as well as in the lining of canned foods.

    Dioxins and Polychlorinated Biphenyls (PCBs) 

    Dioxins are mainly the byproducts of industrial practices; they are released after incineration, trash burning, and fires. PCBs, which are somewhat structurally related to dioxins, were previously found in products such as flame retardants and coolants. Dioxins and PCBs are often grouped in the same category under the umbrella term "persistent organic pollutants" because they break down slowly and remain in the environment even after emissions have been curbed.

    Tetrachlorodibenzodioxin, perhaps the best-known dioxin, is a known carcinogen. Dioxins also have been associated with a host of health implications in development, immunity, and reproductive and endocrine systems. Higher levels of PCB exposure have also been associated with an increased risk for mortality from cardiovascular disease.

    Notably, dioxin emissions have been reduced by 90% since the 1980s, and the US Environmental Protection Agency (EPA) has banned the use of PCBs in industrial manufacturing since 1979. However, environmental dioxins and PCBs still enter the food chain and accumulate in fat.

    The best ways to avoid exposures are through limiting meat, fish, and dairy consumption and trimming the skin and fat from meats. The level of dioxins and PCBs found in meat, eggs, fish, and dairy are approximately 5-10 timeshigher than they are in plant-based foods. Research has shown that farmed salmon is likely to be the most PCB-contaminated protein source in the US diet; however, newer forms of land-based and sustainable aquaculture probably avoid this exposure.

    Pesticides 

    The growth of modern monoculture agriculture in the United States over the past century has coincided with a dramatic surge in the use of industrial pesticides. In fact, over 90% of the US population have pesticides in their urine and blood, regardless of where they live. Exposures are thought to be food related.

    Approximately 1 billion pounds of pesticides are used annually in the United States, including nearly 300 million pounds of glyphosate, which has been identified as a probable carcinogen by European agencies. The EPA has not yet reached this conclusion, although the matter is currently being litigated.

    A large European prospective cohort trial demonstrated a lower risk for cancer in those with a greater frequency of self-reported organic food consumption. In addition to cancer risk, relatively elevated blood levels of a pesticide known as beta-hexachlorocyclohexane (B-HCH) are associated with higher all-cause mortality. Also, exposure to DDE — a metabolite of DDT, a chlorinated pesticide heavily used in the 1940s-1960s that still persists in the environment today — has been shown to increase the risk for Alzheimer's-type dementia as well as overall cognitive decline.

    Because these chlorinated pesticides are often fat soluble, they seem to accumulate in animal products. Therefore, people consuming a vegetarian diet have been found to have lower levels of B-HCH. This has led to the recommendation that consumers of produce should favor organic over conventional, if possible. Here too, the EWG provides an important resource to consumers in the form of shopper guides regarding pesticides in produce.

    Per- and Polyfluoroalkyl Substances (PFAS) 

    PFAS are a group of fluorinated compounds discovered in the 1930s. Their chemical composition includes a durable carbon-fluoride bond, giving them a persistence within the environment that has led to their being referred to as "forever chemicals."

    PFAS have been detected in the blood of 98% of Americans, and in the rainwater of locations as far afield as Tibet and Antarctica. Even low levels of exposure have been associated with an increased risk for cancer, liver disease, low birthweight, and hormonal disruption.

    The properties of PFAS also make them both durable at very high heat and water repellent. Notoriously, the chemical was used by 3M to make Scotchgard for carpets and fabrics and by Dupont to make Teflon for nonstick coating of pots and pans. Although perfluorooctanoic acid (PFOA) was removed from nonstick cookware in 2013, PFAS — a family of thousands of synthetic compounds — remain common in fast-food packaging, water- and stain-repellent clothing, firefighting foam, and personal care products. PFAS are released into the environment during the breakdown of these consumer and industrial products, as well as from dumping from waste facilities.

    Alarmingly, the EWG notes that up to 200 million Americans may be exposed to PFAS in their drinking water. In March 2021, the EPA announced that they will be regulating PFAS in drinking water; however, the regulations have not been finalized. Currently, it is up to individual states to test for its presence in the water. The EWG has compiled a map of all known PFAS contamination sites.

    To avoid or prevent exposures from PFAS, recommendations include filtering tap water with either reverse osmosis or activated carbon filters, as well as avoiding fast food and carry-out food, if possible, and consumer products labeled as "water resistant," "stain-resistant," and "nonstick."

    In a testament to how harmful these chemicals are, the EPA recently revised their lifetime health advisories for PFAS, such as PFOA, to 0.004 parts per trillion, which is more than 10,000 times smaller than the previous limit of 70 parts per trillion. The EPA also has proposed formally designating certain PFAS chemicals as "hazardous substances."