Vitamin D deficiency is associated with adverse health outcomes and increases the risk of osteoporosis, falls and fractures(Reference Mosekilde1–8). Epidemiological evidence has linked low plasma 25-hydroxyvitamin D (25(OH)D) to a number of inflammatory, infectious, cardiovascular and metabolic disorders, and with cancers(Reference Holick9–Reference Sharma, Barr and Macdonald19). Thus, vitamin D is important for human health.
The endogenous production of 25(OH)D depends on the UVB-mediated conversion of 7-dehydrocholesterol to previtamin D3 and further isomerisation to vitamin D3 in the skin(Reference Adams and Hewison10). This depends on exposure to sunlight and plasma 25(OH)D levels in groups of Caucasian individuals decrease with increasing latitude(Reference Holick9, Reference Adams and Hewison10, Reference Sharma, Barr and Macdonald19, Reference Hagenau, Vest and Gissel20). Thus, low plasma levels of 25(OH)D are seen in, for example, Scandinavian populations(Reference Brot, Vestergaard and Kolthoff21, Reference Dalgård, Petersen and Schmedes22) even during the summer(Reference Sharma, Barr and Macdonald19). Very low levels of 25(OH)D may be found in Arctic populations characterised by low sun exposure and heavy outdoor clothing.
Diet provides yet another source of plasma 25(OH)D, with free-living fish and sea mammals being particularly rich in vitamin D(Reference Holick9, Reference Sharma, Barr and Macdonald19, Reference Kleiver, Draper and Ronald23, Reference Lu, Chen and Zhang24). These dominate the traditional Inuit (Eskimo) diet(Reference Sharma, Barr and Macdonald19, Reference Kuhlein, Receveur and Soueida25, Reference Andersen, Hvingel and Kleinschmidt26) and the Inuit consider seal and whale blubber to be of particular dietary value. This may compensate for the lack of exposure to the sun and thus of dermal vitamin D production in Arctic residents.
Transition of Greenlandic societies started around 1960 and has occurred at different paces in different parts of Greenland(Reference Bjerregaard and Young27), so that, today, settlements, towns and the capital city display different degrees of Westernisation(Reference Andersen, Hvingel and Kleinschmidt26, Reference Bjerregaard and Young27). This has influenced the use of the traditional Inuit diet, which has decreased(Reference Andersen, Hvingel and Kleinschmidt26, Reference Bjerregaard and Young27), and this in turn has the potential to influence plasma 25(OH)D(Reference Kuhlein, Receveur and Soueida25). Furthermore, obesity rates in Inuit have increased in parallel with transition(Reference Andersen, Mulvad and Pedersen28). This is associated with lower plasma 25(OH)D in other populations(Reference Adams and Hewison10) and may have a similar effect in Inuit.
This led us to study dietary habits and plasma 25(OH)D in cohorts living in the capital city Nuuk in West Greenland and in the rural Ammassalik district in East Greenland. We evaluated the impact of dietary components on plasma 25(OH)D in Arctic population groups. In addition, we assessed the influence of ethnicity on plasma 25(OH)D.
Subjects and methods
Area of investigation
Nuuk (64°15′N, 51°35′W) in West Greenland is the capital city of Greenland with 13 000 inhabitants of whom 75 % are Inuit (Eskimo) and 25 % non-Inuit (Caucasians). Nuuk was established as a trading post under the Danish crown in 1728 and is now a modern city with access to a wide variety of food items including fast food, Italian food, Thai food and takeaways, supplementary to traditional Greenlandic food items. Furthermore, a wide variety of food items imported from Denmark is available in a number of stores.
The Ammassalik district (65°35′N, 38°00′W) in East Greenland was isolated until 1884 and is still today difficult to access by sea due to pack ice from the northern ice cap. It is sparsely populated with 2943 inhabitants (93 % Inuit) spread over an area of 243 000 km2. Tasiilaq is the main town of the Ammassalik district, which has seven settlements. Tasiilaq has one store with a limited food selection and five minor shops. Each of the settlements has one store with a limited selection depending on access by sea and air.
Subjects and procedures
Participants and procedures have been described in detail previously(Reference Andersen, Hvingel and Kleinschmidt26). We invited 50–69-year-old men and women, both Greenlanders (all Inuit) and non-Greenlanders (all Caucasian Danes), recorded and living at the address. The places selected for the investigation were Nuuk, Tasiilaq, and the settlements Tiniteqilaaq, Sermiligaaq, Kulusuk and Kuummiut in the Ammassalik district. Only the settlements with more than fifteen inhabitants in the selected age group were included. In Nuuk, names and addresses were obtained from the hospital registration system that keeps records of all inhabitants of Nuuk. A random sample of 25 % of the total population aged 50–69 years was selected. The hospital registration system had not been regularly updated and for the investigation in Ammassalik, names and addresses were obtained from the National Civil Registration System in which every person living in Denmark, the Faeroe Islands and Greenland is registered. We invited 225 persons in Nuuk, 184 in Tasiilaq, nineteen in Tiniteqilaaq, twenty-eight in Sermiligaaq, fifty-two in Kulusuk, fifty-three in Kuummiut, and 95 % participated. A Greenlander (Inuit) was defined as an individual born in Greenland with both parents born in Greenland.
The present study was conducted according to the guidelines laid down in the Declaration of Helsinki and all procedures were approved by the Commission for Scientific Research in Greenland (reference no. 2010-8). All subjects gave informed written consent in Danish or Greenlandic by the participant's choice.
The local hospital porter or the nursing station attendant delivered a letter of invitation. The investigation took place at the local hospital or nursing station or by request as home visits. A physical examination was performed including height without shoes, weight in indoor clothing and recording of major disabilities. Participants were interviewed by a Greenlandic interpreter or by one of the investigating doctors (S. A., P. L. and B. H.), completing a questionnaire in either Danish or Greenlandic as appropriate for the participant. Information regarding age and sex was obtained from the National Civil Registration System. Information on lifestyle patterns and dietary habits was obtained by questionnaires. Questions were asked as written in the questionnaires. The same interpreter was used in Nuuk, Tasiilaq and all settlements.
Dietary habits
An interview-based FFQ was used to assess dietary habits. It included seven traditional Inuit (seal, whale, wild fowl, fish, reindeer, musk ox and hare) and seven imported food items (pre-cooked meals, potatoes, vegetables, butter, cheese, eggs and fresh fruit). These food items had been selected because they were typical to the diet in Greenland and they have been used previously(Reference Andersen, Hvingel and Kleinschmidt26). For each food item, six different frequency categories were given from ‘never’ to ‘daily intake’. A frequency score was calculated based on the average number of days per month the food item was ingested(Reference Andersen, Hvingel and Kleinschmidt26). Inuit food items scored positively and imported food items scored negatively. The sum of frequency scores for all food items consumed by each participant was calculated and individuals were categorised as follows: diet group 1, >80 %; diet group 2, 60–80 %; diet group 3, 40–60 %; diet group 4, 20–40 %; diet group 5, < 20 % Inuit food item scores on a scale where 100 % was purely Inuit foods and 0 % was purely imported food. We did not assess portion size for practical reasons but food-frequency scores were validated by cross-check questions as well as by a biomarker of the intake of traditional Inuit foods(Reference Andersen, Hvingel and Kleinschmidt26).
The intake of vitamin D-containing supplements was evaluated by asking the frequency of intake. Supplements were presented to one of the investigating doctors for evaluation. Contents and type of vitamin D differed between supplements available. Vitamin D content was evaluated based on the interview if no supplement was presented. Subjects were classified by daily intakes (yes/no).
Plasma 25-hydroxyvitamin D assay
Plasma 25(OH)D levels were analysed by isotope dilution liquid chromatography–tandem MS (LC–MS/MS) as described earlier(Reference Hojskov, Heickendorff and Moller29). Calibrators traceable to a NIST standard reference material (SRM972) were used (ChromSystems).
Statistics
Results are presented as medians with 25th and 75th percentiles. The plasma 25(OH)D groups were compared using non-parametric statistics: Mann–Whitney U test for comparison of two groups; Kruskal–Wallis test for comparing several groups; Kendall's τ for the relationship between the groups. Plasma 25(OH)D followed the normal distribution (P= 0·17), and linear regression models were used with plasma 25(OH)D as the dependent variable. Interaction was tested in multivariate logistic regression analysis. Explanatory variables were diet group, participant group, ethnic origin, use of supplements, BMI, age, sex and alcohol intake (average number of units per week). Diet, participant group and origin were investigated individually in the multivariate linear regression analysis due to covariance between these. Random selection of participants in Nuuk was performed using MedStat (Astra). Data were processed and analysed using Corel Quattro Pro 8 (Corel Corporation) and the Statistical Package for the Social Sciences version 13.0 (SPSS, Inc.). A P value of less than 0·05 was considered significant.
Results
For the present study, 1 % of the population of Greenland was invited and the participation rate was 95 %. The characteristics of the participants are given in Table 1. In the case of non-Inuit, seven had one parent born in Greenland while ninety-four had neither parent born in Greenland. Non-Inuit were more frequent users of vitamin preparations than Inuit (Table 1). Non-Inuit were skilled labour from Denmark and included more men than women (P< 0·001). Also, there were fewer non-Inuit than Inuit in the age group of 60–69 years and the mean age was lower (men P= 0·001, women P= 0·005; Table 1) because some leave Greenland when retiring. The study cohorts represented different levels of Westernisation as illustrated by hunting habits (Table 1). The two participants categorised as non-Inuit who reported hunting as a trade were of mixed origin.
* Including seven participants of mixed origin.
† χ2 test for comparing proportions among all groups.
‡ χ2 test for comparing proportions among Inuit.
§ BMI increased from settlement to town to city in Inuit men (trend, P= 0·010) but not in women (trend, P= 0·39).
∥ Information missing for one participant.
¶ Estimated units of alcohol per week. Information missing for nine participants.
** Information missing for seven participants.
Dietary habits
Dietary habits differed between the participant groups (Fig. 1). Of the participants, 93 % of Inuit in settlements had a food-frequency score of more than 60 % traditional foods compared with 86 % of Inuit in Tasiilaq, 59 % of Inuit in Nuuk and 3 % of non-Inuit. Conversely, 83 % of non-Inuit reported a food-frequency score of more than 60 % imported foods, while this was 14 % of Inuit in Nuuk and 1·4 % of Inuit in both Tasiilaq and settlements. Differences in dietary habits were marked between Inuit and non-Inuit (P< 0·001) as well as between the Inuit groups (P< 0·001). No seasonal differences in Inuit food frequency were reported.
Vitamin D
Plasma 25(OH)D3 contributed 62·30 nmol/l (99·7 %) to the overall mean of 62·50 nmol/l of total 25(OH)D in the plasma, while 25(OH)D2 contributed only 0·3 %. This proportion was 0·2 % in Inuit and 1·4 % in non-Inuit not taking vitamin D-containing supplements (P= 0·005).
Diet and vitamin D
Fig. 2 shows that there was a significant (P< 0·001) difference in plasma 25(OH)D levels between the participants in the five diet groups. A diet based on mainly imported foods was associated with a mean total plasma 25(OH)D level of 36 nmol/l. This increased gradually (P< 0·001) to 68 nmol/l in the group with a diet comprising mainly traditional Inuit food items. The dietary components reported by Inuit that contributed markedly to plasma 25(OH)D were seal (P= 0·005) and whale (P= 0·015).
The occurrence of plasma 25(OH)D below 50 nmol/l decreased with a higher intake of Inuit foods (Fig. 3) and 25(OH)D below 20 nmol/l was seen only in those with a low intake of traditional Inuit foods.
Ethnicity and vitamin D
Inuit had a higher plasma 25(OH)D than non-Inuit (Fig. 4). They also had the highest intake of traditional Inuit foods (Fig. 1). Table 2 lists the factors important to plasma 25(OH)D levels. Diet, lifestyle and ethnicity influenced plasma 25(OH)D in the adjusted analysis. A plasma 25(OH)D level below 50 nmol/l was more likely with Inuit food scores below 60 % (P< 0·001; OR 5·4, 95 % CI 3·3, 8·8) and was modified by ethnicity (ethnicity × diet as an interaction term, P= 0·005) in the multivariate logistic regression analysis.
* Dependent variable was serum 25(OH)D and explanatory variables were weight, age, sex, alcohol intake, and either ethnicity, lifestyle or diet.
† β (Regression) coefficients were as follows: Inuit/non-Inuit; city/town/settlements; decreasing traditional Inuit diet; vitamin D supplement use − /+; increasing BMI; increasing age; men/women; increasing alcohol intake.
‡ Lifestyle represented by participant groups at different levels of Westernisation: non-Inuit; Inuit in city; Inuit in town; Inuit in settlement (as in Table 1).
§ Diet based on the diet groups calculated from the frequency of intake of seven Inuit and seven imported food items: diet group 1, >80 %; diet group 2, 60–80 %; diet group 3, 40–60 %; diet group 4, 20–40 %; diet group 5, 0–20 % Inuit food-frequency scores.
Discussion
This is the first population-based study of the relationship between plasma 25(OH)D and the transition of societies in Greenland. We found that decreasing intake of the traditional Inuit diet was followed by a decrease in 25(OH)D in the plasma and an emerging vitamin D deficiency. Furthermore, seal and whale were major contributors to plasma 25(OH)D in populations in Greenland. Interestingly, ethnicity may influence the impact of dietary habits on plasma 25(OH)D.
Vitamin D synthesis in humans requires UVB exposure of the skin. In Caucasians, low UVB exposure in high-latitude countries is associated with an increased risk of low plasma 25(OH)D(Reference Mosekilde1, Reference Holick9, Reference Adams and Hewison10, Reference Sharma, Barr and Macdonald19–Reference Brot, Vestergaard and Kolthoff21). Greenland hosts the most northern habitats on Earth with a high solar zenith angle and consequently a very low intensity of UVB as the radiation is absorbed through its oblique passage through the atmosphere. Also, Greenland is an Arctic environment defined by the mean temperature being below 10°C during the warmest month. This influences clothing habits also during summer. Hence, very limited dermal production of vitamin D is expected in populations in Greenland and dietary sources are crucial to maintain adequate plasma 25(OH)D levels(Reference Kuhlein, Receveur and Soueida25, Reference Kuhnlein and Receveur30–Reference Egeland, Johnson-Down and Cao32).
Vitamin D plays a pivotal role in skeletal health and low levels are associated with rickets, osteomalacia and osteoporosis with an increased risk of fractures(Reference Mosekilde1, Reference Bischoff-Ferrari, Willett and Wong4–8, Reference Adams and Hewison10). Vitamin D may also be important for the functioning of other systems, such as the immune system(Reference Adams and Hewison10, Reference Bikle33). As for the latter, tuberculosis is frequent in Greenland but is associated with both low and high plasma 25(OH)D(Reference Nielsen, Skifte and Andersson34). As for the former, knowledge of Inuit skeletal health is limited. Bone mineral density did not differ between Inuit and non-Inuit in North Greenland(Reference Andersen, Boeskov and Laurberg35). On the other hand, more frequent hip fractures were reported in Alaska compared with southern states in the USA(Reference Pratt and Holloway36). However, that study did not take into consideration differences in hours of sunlight and icy pavements. Still, plasma 25(OH)D is associated with the risk of falls(Reference Bischoff-Ferrari, Dawson-Hughes and Willett2, Reference Larsen, Mosekilde and Foldspang3) and myopathy(Reference Mosekilde1, Reference Pfeifer, Begerow and Minne37, Reference Glerup, Mikkelsen and Poulsen38), even though reports on falls in Greenland are lacking, and a sufficient plasma 25(OH)D status is important to human health(Reference Mosekilde1, Reference Adams and Hewison10, Reference Autier and Gandini39).
Vitamin D is ample in traditional Inuit foods that comprise mainly marine mammals and fish, with blubber from seal and whale considered to be of particular value, in addition to caribou and birds(Reference Kuhnlein and Receveur30). Hence, dietary assessment interviews in a large group of Canadian Inuit have reported an intake of vitamin D exceeding the recommended adequate intake by up to 100 %(Reference Kuhlein, Receveur and Soueida25). It has also been reported that days with meals of traditional Inuit foods provided 25 μg vitamin D(Reference Kuhnlein and Receveur30). In contrast, dietary record studies have reported low intakes of vitamin D in the majority of Canadian Inuit in Nunavut and Northwest Territories(Reference Sharma, Barr and Macdonald19, Reference Sharma, Cao and Roache40–Reference Frost43). A contributor to this discrepancy could be dietary transition as the intake of traditional Inuit foods is lower in younger compared with older individuals(Reference Kuhnlein and Receveur30, Reference Kuhnlein, Receveur and Soueida44). This was supported by plasma 25(OH)D in Greenland Inuit in Nuuk and Denmark classified by a weekly intake of marine mammals (yes/no)(Reference Rejnmark, Jørgensen and Pedersen45).
We performed a detailed classification of the diet by including non-Inuit and Inuit living in both an urban area with ample market foods and rural areas with limited availability of these and dependency on hunting and fishing. Participants were categorised based on the frequency of intake of traditional Inuit and imported market foods. This method is limited to the frequency of intake of food items used for main meals and does not include, for example, cereal foods. Also, we did not assess portion size. This hampers the accuracy of our estimates of food intakes but an equal influence on imported and traditional Inuit foods may be anticipated and hence a limited influence on the extent to which groups of subjects were categorised as traditional Inuit or Westernised eaters. Also, the method has been validated for description of the degree of adherence to the traditional Inuit diet(Reference Andersen, Hvingel and Kleinschmidt26). The diet groups were associated markedly with plasma 25(OH)D and we found 88 % higher plasma 25(OH)D values in the group with the highest compared with the lowest intake of traditional Inuit foods. This is twice the difference found in the study with a more crude classification of the diet(Reference Rejnmark, Jørgensen and Pedersen45) but in keeping with the findings among Canadian Inuit(Reference Kuhnlein and Receveur30–Reference Egeland, Johnson-Down and Cao32). Still, plasma 25(OH)D was 68 nmol/l in the group with the highest intake of traditional Inuit foods and thus not exceedingly high.
We found plasma 25(OH)D deficiency, defined as plasma 25(OH)D < 50 nmol/l, in one in four subjects in the group with an Inuit diet score below 20 %. This was absent when the diet score was above 40 %. These diet scores correspond to less than weekly intake of Greenlandic food items and an intake three times weekly or more, respectively. The group with an intake of traditional Inuit foods less than weekly had a 25(OH)D level that matched the finding in Nuuk using the more simple dietary classification(Reference Rejnmark, Jørgensen and Pedersen45). The validity of this crude classification was supported by the present finding of seal and whale as the two major food items in the Inuit diet that were important for plasma 25(OH)D. However, such crude classification could not detect a difference in plasma 25(OH)D in a more recent study(Reference Nielsen, Skifte and Andersson34). Thus, our more detailed classification of the traditional Inuit diet contributed to a more comprehensive description of the association between the traditional Inuit diet and plasma 25(OH)D, which is supported by the findings in Canadian Inuit(Reference Kuhnlein and Receveur30).
We also found a higher plasma 25(OH)D in Inuit, who have darker skin compared with non-Inuit(Reference Frost43). This is in keeping with the diet being the source of plasma 25(OH)D as whites tend to have higher 25(OH)D than do those with darker skin at lower latitudes, i.e. in the USA(Reference Yetley46), the UK(Reference Ashwell, Stone and Stolte47) and immigrants to Scandinavia(Reference Islam, Viljakainen and Kärkkäinen48). The study by Rejnmark et al. (Reference Rejnmark, Jørgensen and Pedersen45) found lower plasma 25(OH)D among Inuit than among non-Inuit in Denmark. This may relate to skin pigmentation but further ethnic differences are supported by the present finding that ethnicity modified the influence of diet on plasma 25(OH)D. Our indirect measure of the influence of ethnicity was distinct (P= 0·005) but should be confirmed in direct comparisons. Whether the difference relates to the bioavailability or metabolism of plasma 25(OH)D remains to be settled.
The capital city Nuuk hosts more obese subjects than does the town and settlements in East Greenland(Reference Andersen, Mulvad and Pedersen28). This could contribute to differences in plasma 25(OH)D levels as obesity reduces plasma 25(OH)D levels in other populations(Reference Adams and Hewison10, Reference Wortsman, Matsuoka and Chen49). However, plasma 25(OH)D levels did not associate with BMI or weight in Inuit.
There was an association between the intake of traditional Inuit food items, the differences in the way of living between the study areas, the availability of imported food items, the frequency of fishing and hunting, and the fraction of non-Inuit. This limited the use of linear regression, but similar results were obtained using logistic regression, though this was less sensitive.
We studied only subjects aged 50–69 years. This might underestimate the impact of the transition away from traditional foods as older people eat more traditional foods(Reference Kuhnlein and Receveur30, Reference Kuhnlein, Receveur and Soueida44). Still, the older age group contributed to a high participation rate of 95 %, which supports the validity of the findings in the present population-based survey. Furthermore, the study included populations at the extremes of transition of societies in Greenland from the capital city Nuuk in West Greenland to remote settlements in East Greenland. Data on plasma 25(OH)D among populations in other areas of the more heavily populated west coast of Greenland are relevant as differences may apply in diet, lifestyle and genetics. Also, follow-up on the populations included here is recommended both to examine the effect of low plasma 25(OH)D in Inuit, and to follow up on the impact of future transition in dietary habits. Finally, younger people have a lower intake of traditional Inuit food items with a higher risk of 25(OH)D deficiency(Reference Kuhnlein and Receveur30, Reference Kuhnlein, Receveur and Soueida44). Thus, younger groups should be included in future studies of vitamin D intake and plasma 25(OH)D in Greenland.
In conclusion, we found low plasma 25(OH)D in older people in Greenland who had a low intake of Inuit food items. This observation was associated with the transition of societies in Greenland in keeping with the findings in indigenous populations in the Canadian Arctic. Furthermore, the present study suggests that ethnicity may contribute to differences in plasma 25(OH)D.
Acknowledgements
We gratefully acknowledge Karoline Berglund for her enthusiasm and thorough interviewing of Inuit. We are grateful for invaluable support from lægeklinikken in Nuuk, from Hans Chr. Florian Sørensen and the staff at the hospital in Tasiilaq, and from the staff at the nursing stations in Tiniteqilaaq, Sermiligaaq, Kuummiut and Kulusuk. This study was supported by grants from the following: Greenland Home Government; Karen Elise Jensen Foundation; Northern Jutland Research Foundation; Aalborg City Christmas Lottery; Danish Hospital Foundation for Medical Research, Region of Copenhagen, the Faeroe Islands and Greenland. The authors' contributions are as follows: S. A. contributed to the project conception, study design, raising of funds, data collection, analysis of the data and writing of the manuscript; P. L. participated in the project conception, study design, raising of funds, data collection, analysis of the data and reviewing of the manuscript; B. H. was responsible for the data collection and reviewing of the manuscript; K. K. participated in the study design and reviewing of the manuscript; L. H. was responsible for the analysis of the data, reviewing of the manuscript; L. M. contributed to the conception of the idea and writing of the manuscript. The authors declare that there are no conflicts of interest.