1Department of Health Sciences and Pharmacy, Higher Colleges of Technology, Dubai, United Arab Emirates
2Department of Health Research, Lancaster University, Lancaster, UK
3United Arab Emirates University, Al Ain, United Arab Emirates
4Department of Health Sciences and Pharmacy, Higher Colleges of Technology, Dubai, United Arab Emirates
Copyright © 2021 The Korean Society for Bone and Mineral Research
This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (https://creativecommons.org/licenses/by-nc/4.0/) which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.
Population: postmenopausal women with/without osteoporosis with no additional comorbidity.
Design: RCT
Aim: evaluate the effect of vitamin K2 alone or in combination with vitamin D and/or calcium on BTM and/or BMD amongst postmenopausal females.
Intervention: vitamin K2 alone or in combination with vitamin D3, and/or calcium.
Comparator/s: placebo, calcium carbonate and/or vitamin D3 or vitamin K2 only or in combination with vitamin D3 and/or calcium.
Publication language, and accessibility: published in English and can be sourced as a full text either directly from the journal by using the Higher Colleges of Technology Library and/or Lancaster University.
Jadad score ≥2
| OC variables including: |
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| Bone-derived alkaline phosphatase: |
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| Collagen peptides: |
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| Collagen degradation products: |
|
OC, osteocalcin; ucOC, undercarboxylated OC; cOC, carboxylated OC; Gla-OC, γ-carboxylated OC; Cr, creatinine; BAP, bone alkaline phosphatase; BSAP, bone-specific alkaline phosphatase; PINP, procollagen type 1 N-terminal propeptide; PICP, propeptide of type I procollagen; NTX, N-terminal telopeptide levels; CTX, C-terminal telopeptide of type I collagen; CL, crosslaps; DPD, deoxypyridinoline; N-mid, N-terminal/midregion.
Funding
This research received no specific grant from any funding agency in the public, commercial, or not-for-profit sectors.
Ethics approval and consent to participate
Not applicable.
Conflict of interest
No potential conflict of interest relevant to this article was reported.
| References | Year | Jadad scale | Groups and sample size | Design | Duration of intervention | Efficacy parameters or measures | Main outcomes in the efficacy parameter |
|---|---|---|---|---|---|---|---|
| Knapen et al. [37] | 2007 | 2 | Total number (N=257): group 1 (vitamin K2 once daily): N=133, Group 2 (placebo): N=124 | Randomized control study | 3 years | BMD (this was measured after 1, 2, and 3 years of starting the treatment/placebo), BMC, tOC, ucOC, cOC, BAP, sNTX, free DPD. These were measured at baseline, and then in months 3, 6, 12 and 36. However, all results were reported after 12 months of use. | BMD (g/cm2): no effect at any of the sites measured; BMC (g): group 1 and 2 levels in group 1 decreased at a significantly lower rate than in the placebo one (P<0.05). OC variables: (1) cOC (ng/mL): group 1 increased by about 0.5 ng/mL, group 2 reduced by about 2 ng/mL, difference between groups: significant; (2) ucOC (ng/mL): group 1 declined by about>2 ng/mL, group 2 increased by about 1 ng/mL, difference between groups: significant; (3) tOC (ng/ mL): the levels in both groups remained almost the same (14 ng/mL). BAP reported in U/l: the levels in groups 1 and 2 increased by around 4 U/l. Collagen degradation products: (1) NTX (nM): group 1 increased by about 2 nM, group 2 increased by about 1 nM, difference between groups: insignificant; (2) DPD/creat (nmol/mmol): levels in both groups reduced by approximately 2 nmol/mmol. |
| Emaus et al. [39] | 2010 | 5 | Total number (N=299): group 1 (vitamin K2 once daily): N=153, group 2 (placebo): N=146 | Randomized, double-blind, placebo-controlled trial | 12 months | BMD, sOC, CL, ucOC, cOC, BAP. These were measured at baseline and after 12 months. | BMD (g/cm2): (1) Total hip: group 1 reduced by about 0.004 g/cm2, group 2 reduced by about 0.003 g/cm2, difference between groups: insignificant; (2) Femoral neck: group 1 reduced by approximately 0.004 g/cm2, group 2 reduced by 0.005 g/cm2, difference between groups: insignificant; (3) Lumbar spine: group 1 reduced by 0.006 g/cm2, group 2 declined by 0.006 g/cm2, difference between groups: insignificant; (4) Total body: group 1 reduced by 0.010 g/cm2, group 2 reduced by 0.009 g/cm2, difference between groups: insignificant. OC variables: (1) N-mid OC (ng/mL): group 1 reduced by about 4.78 ng/mL, group 2 reduced by 1.66 ng/mL, difference between groups: significant; (2) cOC (ng/mL): group 1 increased by about 5.56 ng/mL, group 2 it increased by around 1.70 ng/mL, difference between groups: significant; (3) ucOC (ng/mL): group 1 reduced by 1.92 ng/mL, group 2: reduced by 0.24 ng/mL, difference between groups: significant. BAP reported in μg/L: group 1 no change, group 2 reduced by 1.11 μg/L, difference between groups: insignificant. Collagen degradation products (CL reported in ng/mL): the levels in group 1 and 2 declined by about 0.06 after 12 months of use. |
| Inaba et al. [41] | 2015 | 5 | Total number (N=115): group 1 (vitamin K): N=58, group 2 (placebo): N=57 | Double-blinded randomized controlled trial | 84 days | cOC, ucOC, cOC/ucOC ratio. These were measured at baseline, and after 28, 56, 84, and 112 days. Importantly, the vitamin K2/placebo were only ingested for a period of 84 days. | OC variables: (1) cOC (ng/mL): group 1 increased from baseline by about 2.29 ng/mL, group 2 reduced by about 2 ng/mL, difference between groups: insignificant; (2) ucOC (ng/mL): group 1 reduced significantly by 1.5 ng/mL, group 2 no change; (3) cOC/ucOC ratio: group 1 increased significantly by about 0.5, group 2 it remained almost the same. |
| Rønn et al. [38] | 2016 | 3 | Total number (N=142): group 1 (vitamin K, calcium, and vitamin D): N=71, group 2 (placebo, calcium, and vitamin D): N=71 | Randomized, placebo-controlled, double-blinded clinical trial | 1 year | BMD, OC, ucOC, PINP, BAP, CTX. These were measured at baseline, and after 3, 6, 9, and 12 months. | vBMD of the tibia and radius (in percentage): (1) Tibia: group 1 no change, group 2 decreased significantly by 3.5±8.6%, difference between groups: significant; (2) Radius: no changes in both groups. aBMD (in percentages): changes after 12 months were small and did not differ between the groups. OC variables: (1) OC (changes in the mean represented in percentages): group 1 reduced by 25% after 6 and 12 months, group 2 remained almost static, difference between groups: significant; (2) ucOC (changes in the mean represented in percentages): group 1 reduced from baseline by about 80%, group 2 almost no changes, difference between groups: significant; (3) ucOC/OC ratio (changes in the mean represented in percentages): group 1 reduced by about 55%, group 2 almost no changes, difference between groups: significant. BAP (changes in the mean represented in percentages): group 1 increased by about 5%, group 2: slight reduction, difference between groups: significant. Collagen peptides (PINP, changes in the mean represented in percentages): both groups showed an increase in the levels by about 5% from baseline. Collagen degradation products (CTX, changes in the mean represented in percentages): both groups showed a slight elevation in the levels of CTX by about 5% after 12 months. |
| Jiang et al. [36] | 2014 | 3 | Total number (N=213): group 1 (vitamin K2 and calcium once daily): N=108, group 2 (placebo and calcium carbonate once daily): N=105 | Multi-center, randomized, double-blinded, double-dummy, positive drug controlled study | 1 year | BMD, OC, ucOC, ucOC/OC ratio. These were measured at baseline, and then in months 6 and 12. | BMD (in percentage): (1) Lumbar spine: group 1 increased significantly by 1.2% after 12 months of use, group 2 increased significantly 2.2% after 12 months of use, difference between groups: insignificant; (2) Trochanter: group 1 increased significantly by 2.7% after 12 months of use, group 2 increased significantly by 1.8% after 12 months of use, difference between groups: insignificant; (3) Femoral neck: no significant changes in both groups from baseline. OC variables: (1) OC and ucOC (in percentage): group 1 OC and ucOC decreased significantly by 38.7% and 82.3%, respectively after 12 months, group 2 OC and ucOC decreased significantly by 25.8% and 34.8%, respectively after 12 months, difference between groups: significant; (2) ucOC/OC ratio (in percentage): the ratio in both groups reduced significantly after treatment, but the reduction was more profound in group 1. |
| Purwosunu et al. [33] | 2006 | 4 | Total number (N=63): group 1 (vitamin K2 and calcium carbonate once daily): N=30, group 2 (placebo and calcium carbonate once daily): N=33 | Randomized double-blinded control study | 48 weeks | BMD, OC, ucOC. These were measured at baseline, and then in week 24 and 48. | BMD of lumbar bone (in percentage): group 1 changed positively by 1.74±0.43%, group 2 changed negatively by −0.18±0.24%, difference between groups: significant. OC variables: (1) OC (ng/mL reported in mean±SD): group 1 increased significantly from 15 ng/mL to 23.1±13.6 ng/mL, group 2 increased insignificantly from about 20 ng/mL to 21.5±12.4 ng/mL, difference between groups: significant; (2) ucOC (ng/mL reported in mean±SD): group 1 reduced significantly from a little above 6 ng/mL to 2.6±2.15 ng/mL, group 2 reduced insignificantly from a little less than 6 ng/mL to 4.9±0.8 ng/mL, difference between groups: significant. |
| Yasui et al. [34] | 2006 | 2 | Total number (N=30): group 1 (vitamin K2 45 mg once daily): N=16, group 2 (vitamin K2 45 mg and vitamin D3 0.75 μg once daily): N=14 | Randomized control study | 2 years | BMD at the lumbar and spine, OC, ucOC, DPD, BAP. These parameters were measured before the intervention, and then after the 1st year and 2nd year of intervention. The difference between groups in all these parameters was not tested. | BMD (g/cm2): (1) Lumbar spine: group 1 reduced significantly from 0.743+0.052 to 0.685+0.038 g/cm2 after 2 years, group 2 declined insignificantly from 0.728+0.056 to 0.707+0.058 g/cm2 after 2 years. OC variables: (1) OC (ng/ mL): group 1 reduced insignificantly from 4.2+2.3 to 3.8+3.4 ng/ mL after 2 years, group 2 reduced significantly from 6.3+4.1 to 2.7+1.9 ng/mL after 2 years. BAP reported in U/L: group 1 remained almost the same, group 2 reduced significantly from 32.6+10.2 to 29.4+8.2 U/L after 2 years. Collagen degradation products (DPD reported in nM/mM Cr): group 1 reduced insignificantly from 9.4+2.6 to 8.0+3.3 nM/mM Cr after 2 years, group 2 reduced insignificantly from 11.7+6.5 to 5.8+0.7 nM/mM Cr after 2 years. |
| Ushiroyama et al. [35] | 2002 | 2 | Total number (N=126): group 1 (vitamin K2 45 mg): N=30, group 2 (vitamin D3, 1 − α hydroxycholecalciferol 1 μg): N=32, group 3: (combination): N=31, Group 4 (controls): N=33 | Randomized control study | 2 years | BMD at the lumber spine, PICP, OC, Gla/Cr, urinary pyridinoline, blood coagulation profile “APTT, AT-III, fibrinogen and plasminogen”. These parameters were measured before the intervention, and after 6, 12, 24, and 48 months. The difference between groups in all these parameters was not tested. The BMD was compared between all four groups, while OC, Gla/Cr, urinary pyridinoline and PICP was compared between group 1 and 3. | BMD g/cm2 reported as mean±SD: group 1 increased insignificantly by 0.012 g/cm2 after 24 months, group 2 increased insignificantly by 0.05 g/cm2 after 24 months, group 3 increased significantly by 0.025 g/cm2 after 24 months, group 4 reduced significantly by 0.035 g/cm2 after 24 months. OC variables: (1) Gla/Cr (nmol/MCM. Cr.) reported in percentages: group 1 increased significantly by 56.8% after 24 months, group 3 increased insignificantly by almost 10% after 24 months; (2) Intact OC (ng/mL) reported in percentages: group 1 initially increased, then went below baseline (P>0.05) after 24 months, group 3 increased significantly by 10% (P<0.05) after 24 months. Collagen peptides (PICP reported in percentages): group 1 initially increased, then decreased significantly (P<0.05) after 24 months, group 3 increased significantly by 24.2% (P<0.05) after 24 months. Collagen degradation products (urinary pyridinoline reported in percentages): group 1 increased significantly by 50% after 24 months, group 3 increased significantly by 84.5% after 24 months. |
| Koitaya et al. [40] | 2009 | 4 | Total number (N=40): group 1 (vitamin K2 1.5 mg once daily): N=20, group 2 (placebo): N=20 | Randomized double-blinded placebo control trial | 4 weeks | Serum concentration of PK and MK-4, BAP, ucOC, Gla-OC, ratio of Gla-OC/Gla-OC+ucOC, urine free DPD, serum OH(25)D3. These parameters were measures before the intervention, and then after 2 and 4 weeks. | OC variables: (1) ucOC (ng/mL) reported in digits: group 1 reduced significantly by 1.5 ng/mL, group 2 increased significantly by 0.4 ng/mL, difference between groups: significant only after 4 weeks; (2) Gla-OC (ng/mL): group 1 and 2 increased significantly from baseline (P<0.05), yet, the increase was more profound in vitamin K2 receivers, difference between groups: significant only after 4 weeks; (3) Gla-OC/Gla-OC+ucOC ratio: group 1 increased significantly by 0.1 after 4 weeks, group 2 remained almost the same after 4 weeks, difference between groups: significant only after 4 weeks. BAP reported in U/L: group 1 reduced significantly by 3.9 U/L, group 2 reduced significantly by 3.5 U/L. Collagen degradation products: (1) DPD/creatitine (nmol/mmoL Cr): group 1 increased significantly by 0.4 nmol/mmoL Cr, group 2 it increased insignificantly by 0.9 nmol/mmoL Cr, difference between groups: insignificant (2) NTX/Cr (nmol BCE/mmol Cr): group 1 increased significantly by 1.6 nmol/mmol Cr, group 2 decreased insignificantly by 1.1 nmol/mmoL Cr, difference between groups: insignificant. |
BMD, bone mineral density; aBMD, areal bone mineral density; vBMD, volumetric bone mineral density; BMC, bone mineral content; OC, osteocalcin; sOC, serum osteocalcin; tOC, total osteocalcin; cOC, carboxylated osteocalcin; ucOC, undercarboxylated osteocalcin; BAP, bone-specific alkaline phosphate; NTX, N-terminal telopeptide levels; DPD, deoxypyridinoline; CL, crosslaps; SD, standard deviation; PINP, procollagen type 1 N-terminal propeptide; PICP, carboxyterminal propeptide of type I procollagen; CTX, C-terminal telopeptide of type I collagen; Gla, γ–carboxyglutaminate; APTT, activated partial thromboplastin time; AT-III, antithrombin III; PK, phylloquinone; MK-4, menaquinone-4; DPD, deoxypyridinoline; OH(25)D3, 25-hydroxy-vitamin D3; BCE, bone collagen equivalents; Cr, creatinine.
| Parameter | Number of studies | References |
|---|---|---|
| BMD | 7 | Yasui et al. [34], Ushiroyama et al. [35], Jiang et al. [36], Knapen et al. [37], Rønn et al. [38], Emaus et al. [39], Koitaya et al. [40] |
| OC | 9 | Yasui et al. [34], Ushiroyama et al. [35], Jiang et al. [36], Knapen et al. [37], Rønn et al. [38], Emaus et al. [39], Koitaya et al. [40], Inaba et al. [41], Kazdin [42] |
| Gla/Cr and Gla-OC/Gla-OC+ucOC ratio | 2 | Ushiroyama et al. [35], Jiang et al. [36] |
| ucOC: cOC or cOC: ucOC ratio | 3 | Emaus et al. [39], Koitaya et al. [40], Kazdin [42] |
| BAP and BSAP | 4 | Ushiroyama et al. [35], Knapen et al. [37], Rønn et al. [38], Emaus et al. [39] |
| PINP and PICP | 3 | Jiang et al. [36], Rønn et al. [38], Emaus et al. [39] |
| CTX and CL | 2 | Rønn et al. [38], Emaus et al. [39] |
| NTX (nM) or NTX/Cr ratio | 2 | Knapen et al. [37], Inaba et al. [41] |
| DPD and urinary pyridinoline | 3 | Ushiroyama et al. [35], Jiang et al. [36], Inaba et al. [41] |
BMD, bone mineral density; OC, osteocalcin; Gla, γ-carboxyglutamate; ucOC, undercarboxylated osteocalcin; BAP, bone alkaline phosphate; PINP, procollagen type 1 N-terminal propeptide; PICP, carboxyterminal propeptide of type I procollagen; CTX, C-terminal telopeptide of type I collagen; CL, crosslaps; NTX, N-terminal telopeptide levels; DPD, deoxypyridinoline.
Bone markers
| OC variables including:
- OC - ucOC - cOC or plasma Gla-OC - ucOC: cOC or cOC: ucOC ratio - Total OC or Gla-OC/Gla-OC+ucOC ratio - Gla/Cr |
- OC is a highly sensitive marker for bone formation, it is a tissue specific marker, lacks interpersonal variations, and reflects the osteoblastic activity.[43–46] OC is known to increase during postmenopausal osteoporosis and decreases post-therapy.[43–46] The standard immunochemical assays for evaluating osteoblastic activity are intact OC (amino acids 1–49) and N-mid OC (amino acids 1–43).[43–46] N-mid OC is apparently more stable when compared to intact OC due to protease cleavage between amino acids 43 and 44.[43–47] - cOC gets elevation in the levels of carboxylated variants of OC is an indicator of bone formation activities (osteoblast).[43–47] - ucOC is produced through an imperfect γ-carboxylation, which is a bone marker reflecting the bone resorption activities as well as the vitamin K status in the bone.[46,48] In vitamin K deficiency, as the levels of c-carboxylation reduces, this does not enable a large portion of OC to undergo the complete carboxylation process, hence it is being termed as the ucOC.[49] A negative association between serum levels of ucOC and BMD at the hip has been reported,[50] and it has been disputed that a high ucOC level may be a marker of hip fracture risk in elderly women.[50,51] - γ-carboxyglutaminate protein is involved in the local control of calcium deposition in mineralized tissue, and is often high in patients with osteoporosis.[22,46,48] - The ucOC: cOC ratio as well can be used as an indicator for the status of vitamin K, where an elevation in the ratio indicates low level of vitamin K.[52,53] - γ-carboxyglutaminate Gla/Cr protein is involved in the local control of calcium deposition in mineralized tissue, and is often high in patients with osteoporosis. [22,46,48] |
| Bone-derived alkaline phosphatase:
- BAP or used interchangeably with serum BAP or BSAP |
- These are bone specific isoforms of alkaline phosphate reflecting the biosynthetic activity of bone-forming cells, which is found to be high in diseases or conditions such as Paget, osteomalacia and osteoporosis.[54] |
| Collagen peptides:
- PINP - PICP |
- PINP are derived from collage type I, the most abundant form of collagen found in bone.[55,56] In bone, collagen is synthesised by osteoblasts in the form of pre-procollagen which are characterized by having the PINP and PICP.[55,56] Since these are generated from newly synthesised collagen, they are considered quantitative measures of newly formed type I collagen.[55,56] - PICP is a specific marker of proliferating osteoblasts and fibroblasts, therefore is a marker of bone formation.[44] |
| Collagen degradation products:
- Cross-linked NTX or aminoterminal cross-linked telopeptide of type I collagen - Cross-linked CTX or C-terminal cross-linked telopeptide of type I collagen or CL - DPD - Urinary pyridinoline |
- NTX molecules are mobilized from bone by osteoclasts and subsequently excreted in the urine, and an increase in the levels of NTX indicates an increase in the bone turnover, more specifically it is an indication of unbalanced remodeling (osteoblasts and osteoclasts) which is usually seen in osteoporosis.[55–57] NTX is also expressed as a ratio of Cr. - During the bone resorption, osteoclasts secrete a mixture of acid and neutral proteases that degrade the collagen fibrils into molecular fragments CTX.[58] Elevated levels of CTX indicate increased bone resorption, and increased levels are associated with osteoporosis, osteopenia, Paget disease, hyperthyroidism, and hyperparathyroidism.[58] - CL, which measures the degradation of CTX of type I collagen. - The bone turnover process can be assessed by exploring the degradation of bone collagen such as the pyridinoline and DPD, which are formed during the maturation of bones.[59,60] During bone resorption, when mature bone collagen is degraded, these compounds get released and then eliminated via the kidneys.[59,60] The levels are found to be higher in patients with osteoporosis in comparison to healthy individuals.[61] |
OC, osteocalcin; ucOC, undercarboxylated OC; cOC, carboxylated OC; Gla-OC, γ-carboxylated OC; Cr, creatinine; BAP, bone alkaline phosphatase; BSAP, bone-specific alkaline phosphatase; PINP, procollagen type 1 N-terminal propeptide; PICP, propeptide of type I procollagen; NTX, N-terminal telopeptide levels; CTX, C-terminal telopeptide of type I collagen; CL, crosslaps; DPD, deoxypyridinoline; N-mid, N-terminal/midregion.
Results gleaned from randomized controlled trials
| References | Year | Jadad scale | Groups and sample size | Design | Duration of intervention | Efficacy parameters or measures | Main outcomes in the efficacy parameter |
|---|---|---|---|---|---|---|---|
| Knapen et al. [37] | 2007 | 2 | Total number (N=257): group 1 (vitamin K2 once daily): N=133, Group 2 (placebo): N=124 | Randomized control study | 3 years | BMD (this was measured after 1, 2, and 3 years of starting the treatment/placebo), BMC, tOC, ucOC, cOC, BAP, sNTX, free DPD. These were measured at baseline, and then in months 3, 6, 12 and 36. However, all results were reported after 12 months of use. | BMD (g/cm2): no effect at any of the sites measured; BMC (g): group 1 and 2 levels in group 1 decreased at a significantly lower rate than in the placebo one (P<0.05). OC variables: (1) cOC (ng/mL): group 1 increased by about 0.5 ng/mL, group 2 reduced by about 2 ng/mL, difference between groups: significant; (2) ucOC (ng/mL): group 1 declined by about>2 ng/mL, group 2 increased by about 1 ng/mL, difference between groups: significant; (3) tOC (ng/ mL): the levels in both groups remained almost the same (14 ng/mL). BAP reported in U/l: the levels in groups 1 and 2 increased by around 4 U/l. Collagen degradation products: (1) NTX (nM): group 1 increased by about 2 nM, group 2 increased by about 1 nM, difference between groups: insignificant; (2) DPD/creat (nmol/mmol): levels in both groups reduced by approximately 2 nmol/mmol. |
| Emaus et al. [39] | 2010 | 5 | Total number (N=299): group 1 (vitamin K2 once daily): N=153, group 2 (placebo): N=146 | Randomized, double-blind, placebo-controlled trial | 12 months | BMD, sOC, CL, ucOC, cOC, BAP. These were measured at baseline and after 12 months. | BMD (g/cm2): (1) Total hip: group 1 reduced by about 0.004 g/cm2, group 2 reduced by about 0.003 g/cm2, difference between groups: insignificant; (2) Femoral neck: group 1 reduced by approximately 0.004 g/cm2, group 2 reduced by 0.005 g/cm2, difference between groups: insignificant; (3) Lumbar spine: group 1 reduced by 0.006 g/cm2, group 2 declined by 0.006 g/cm2, difference between groups: insignificant; (4) Total body: group 1 reduced by 0.010 g/cm2, group 2 reduced by 0.009 g/cm2, difference between groups: insignificant. OC variables: (1) N-mid OC (ng/mL): group 1 reduced by about 4.78 ng/mL, group 2 reduced by 1.66 ng/mL, difference between groups: significant; (2) cOC (ng/mL): group 1 increased by about 5.56 ng/mL, group 2 it increased by around 1.70 ng/mL, difference between groups: significant; (3) ucOC (ng/mL): group 1 reduced by 1.92 ng/mL, group 2: reduced by 0.24 ng/mL, difference between groups: significant. BAP reported in μg/L: group 1 no change, group 2 reduced by 1.11 μg/L, difference between groups: insignificant. Collagen degradation products (CL reported in ng/mL): the levels in group 1 and 2 declined by about 0.06 after 12 months of use. |
| Inaba et al. [41] | 2015 | 5 | Total number (N=115): group 1 (vitamin K): N=58, group 2 (placebo): N=57 | Double-blinded randomized controlled trial | 84 days | cOC, ucOC, cOC/ucOC ratio. These were measured at baseline, and after 28, 56, 84, and 112 days. Importantly, the vitamin K2/placebo were only ingested for a period of 84 days. | OC variables: (1) cOC (ng/mL): group 1 increased from baseline by about 2.29 ng/mL, group 2 reduced by about 2 ng/mL, difference between groups: insignificant; (2) ucOC (ng/mL): group 1 reduced significantly by 1.5 ng/mL, group 2 no change; (3) cOC/ucOC ratio: group 1 increased significantly by about 0.5, group 2 it remained almost the same. |
| Rønn et al. [38] | 2016 | 3 | Total number (N=142): group 1 (vitamin K, calcium, and vitamin D): N=71, group 2 (placebo, calcium, and vitamin D): N=71 | Randomized, placebo-controlled, double-blinded clinical trial | 1 year | BMD, OC, ucOC, PINP, BAP, CTX. These were measured at baseline, and after 3, 6, 9, and 12 months. | vBMD of the tibia and radius (in percentage): (1) Tibia: group 1 no change, group 2 decreased significantly by 3.5±8.6%, difference between groups: significant; (2) Radius: no changes in both groups. aBMD (in percentages): changes after 12 months were small and did not differ between the groups. OC variables: (1) OC (changes in the mean represented in percentages): group 1 reduced by 25% after 6 and 12 months, group 2 remained almost static, difference between groups: significant; (2) ucOC (changes in the mean represented in percentages): group 1 reduced from baseline by about 80%, group 2 almost no changes, difference between groups: significant; (3) ucOC/OC ratio (changes in the mean represented in percentages): group 1 reduced by about 55%, group 2 almost no changes, difference between groups: significant. BAP (changes in the mean represented in percentages): group 1 increased by about 5%, group 2: slight reduction, difference between groups: significant. Collagen peptides (PINP, changes in the mean represented in percentages): both groups showed an increase in the levels by about 5% from baseline. Collagen degradation products (CTX, changes in the mean represented in percentages): both groups showed a slight elevation in the levels of CTX by about 5% after 12 months. |
| Jiang et al. [36] | 2014 | 3 | Total number (N=213): group 1 (vitamin K2 and calcium once daily): N=108, group 2 (placebo and calcium carbonate once daily): N=105 | Multi-center, randomized, double-blinded, double-dummy, positive drug controlled study | 1 year | BMD, OC, ucOC, ucOC/OC ratio. These were measured at baseline, and then in months 6 and 12. | BMD (in percentage): (1) Lumbar spine: group 1 increased significantly by 1.2% after 12 months of use, group 2 increased significantly 2.2% after 12 months of use, difference between groups: insignificant; (2) Trochanter: group 1 increased significantly by 2.7% after 12 months of use, group 2 increased significantly by 1.8% after 12 months of use, difference between groups: insignificant; (3) Femoral neck: no significant changes in both groups from baseline. OC variables: (1) OC and ucOC (in percentage): group 1 OC and ucOC decreased significantly by 38.7% and 82.3%, respectively after 12 months, group 2 OC and ucOC decreased significantly by 25.8% and 34.8%, respectively after 12 months, difference between groups: significant; (2) ucOC/OC ratio (in percentage): the ratio in both groups reduced significantly after treatment, but the reduction was more profound in group 1. |
| Purwosunu et al. [33] | 2006 | 4 | Total number (N=63): group 1 (vitamin K2 and calcium carbonate once daily): N=30, group 2 (placebo and calcium carbonate once daily): N=33 | Randomized double-blinded control study | 48 weeks | BMD, OC, ucOC. These were measured at baseline, and then in week 24 and 48. | BMD of lumbar bone (in percentage): group 1 changed positively by 1.74±0.43%, group 2 changed negatively by −0.18±0.24%, difference between groups: significant. OC variables: (1) OC (ng/mL reported in mean±SD): group 1 increased significantly from 15 ng/mL to 23.1±13.6 ng/mL, group 2 increased insignificantly from about 20 ng/mL to 21.5±12.4 ng/mL, difference between groups: significant; (2) ucOC (ng/mL reported in mean±SD): group 1 reduced significantly from a little above 6 ng/mL to 2.6±2.15 ng/mL, group 2 reduced insignificantly from a little less than 6 ng/mL to 4.9±0.8 ng/mL, difference between groups: significant. |
| Yasui et al. [34] | 2006 | 2 | Total number (N=30): group 1 (vitamin K2 45 mg once daily): N=16, group 2 (vitamin K2 45 mg and vitamin D3 0.75 μg once daily): N=14 | Randomized control study | 2 years | BMD at the lumbar and spine, OC, ucOC, DPD, BAP. These parameters were measured before the intervention, and then after the 1st year and 2nd year of intervention. The difference between groups in all these parameters was not tested. | BMD (g/cm2): (1) Lumbar spine: group 1 reduced significantly from 0.743+0.052 to 0.685+0.038 g/cm2 after 2 years, group 2 declined insignificantly from 0.728+0.056 to 0.707+0.058 g/cm2 after 2 years. OC variables: (1) OC (ng/ mL): group 1 reduced insignificantly from 4.2+2.3 to 3.8+3.4 ng/ mL after 2 years, group 2 reduced significantly from 6.3+4.1 to 2.7+1.9 ng/mL after 2 years. BAP reported in U/L: group 1 remained almost the same, group 2 reduced significantly from 32.6+10.2 to 29.4+8.2 U/L after 2 years. Collagen degradation products (DPD reported in nM/mM Cr): group 1 reduced insignificantly from 9.4+2.6 to 8.0+3.3 nM/mM Cr after 2 years, group 2 reduced insignificantly from 11.7+6.5 to 5.8+0.7 nM/mM Cr after 2 years. |
| Ushiroyama et al. [35] | 2002 | 2 | Total number (N=126): group 1 (vitamin K2 45 mg): N=30, group 2 (vitamin D3, 1 − α hydroxycholecalciferol 1 μg): N=32, group 3: (combination): N=31, Group 4 (controls): N=33 | Randomized control study | 2 years | BMD at the lumber spine, PICP, OC, Gla/Cr, urinary pyridinoline, blood coagulation profile “APTT, AT-III, fibrinogen and plasminogen”. These parameters were measured before the intervention, and after 6, 12, 24, and 48 months. The difference between groups in all these parameters was not tested. The BMD was compared between all four groups, while OC, Gla/Cr, urinary pyridinoline and PICP was compared between group 1 and 3. | BMD g/cm2 reported as mean±SD: group 1 increased insignificantly by 0.012 g/cm2 after 24 months, group 2 increased insignificantly by 0.05 g/cm2 after 24 months, group 3 increased significantly by 0.025 g/cm2 after 24 months, group 4 reduced significantly by 0.035 g/cm2 after 24 months. OC variables: (1) Gla/Cr (nmol/MCM. Cr.) reported in percentages: group 1 increased significantly by 56.8% after 24 months, group 3 increased insignificantly by almost 10% after 24 months; (2) Intact OC (ng/mL) reported in percentages: group 1 initially increased, then went below baseline (P>0.05) after 24 months, group 3 increased significantly by 10% (P<0.05) after 24 months. Collagen peptides (PICP reported in percentages): group 1 initially increased, then decreased significantly (P<0.05) after 24 months, group 3 increased significantly by 24.2% (P<0.05) after 24 months. Collagen degradation products (urinary pyridinoline reported in percentages): group 1 increased significantly by 50% after 24 months, group 3 increased significantly by 84.5% after 24 months. |
| Koitaya et al. [40] | 2009 | 4 | Total number (N=40): group 1 (vitamin K2 1.5 mg once daily): N=20, group 2 (placebo): N=20 | Randomized double-blinded placebo control trial | 4 weeks | Serum concentration of PK and MK-4, BAP, ucOC, Gla-OC, ratio of Gla-OC/Gla-OC+ucOC, urine free DPD, serum OH(25)D3. These parameters were measures before the intervention, and then after 2 and 4 weeks. | OC variables: (1) ucOC (ng/mL) reported in digits: group 1 reduced significantly by 1.5 ng/mL, group 2 increased significantly by 0.4 ng/mL, difference between groups: significant only after 4 weeks; (2) Gla-OC (ng/mL): group 1 and 2 increased significantly from baseline (P<0.05), yet, the increase was more profound in vitamin K2 receivers, difference between groups: significant only after 4 weeks; (3) Gla-OC/Gla-OC+ucOC ratio: group 1 increased significantly by 0.1 after 4 weeks, group 2 remained almost the same after 4 weeks, difference between groups: significant only after 4 weeks. BAP reported in U/L: group 1 reduced significantly by 3.9 U/L, group 2 reduced significantly by 3.5 U/L. Collagen degradation products: (1) DPD/creatitine (nmol/mmoL Cr): group 1 increased significantly by 0.4 nmol/mmoL Cr, group 2 it increased insignificantly by 0.9 nmol/mmoL Cr, difference between groups: insignificant (2) NTX/Cr (nmol BCE/mmol Cr): group 1 increased significantly by 1.6 nmol/mmol Cr, group 2 decreased insignificantly by 1.1 nmol/mmoL Cr, difference between groups: insignificant. |
BMD, bone mineral density; aBMD, areal bone mineral density; vBMD, volumetric bone mineral density; BMC, bone mineral content; OC, osteocalcin; sOC, serum osteocalcin; tOC, total osteocalcin; cOC, carboxylated osteocalcin; ucOC, undercarboxylated osteocalcin; BAP, bone-specific alkaline phosphate; NTX, N-terminal telopeptide levels; DPD, deoxypyridinoline; CL, crosslaps; SD, standard deviation; PINP, procollagen type 1 N-terminal propeptide; PICP, carboxyterminal propeptide of type I procollagen; CTX, C-terminal telopeptide of type I collagen; Gla, γ–carboxyglutaminate; APTT, activated partial thromboplastin time; AT-III, antithrombin III; PK, phylloquinone; MK-4, menaquinone-4; DPD, deoxypyridinoline; OH(25)D3, 25-hydroxy-vitamin D3; BCE, bone collagen equivalents; Cr, creatinine.
Number of studies exploring each parameter
| Parameter | Number of studies | References |
|---|---|---|
| BMD | 7 | Yasui et al. [34], Ushiroyama et al. [35], Jiang et al. [36], Knapen et al. [37], Rønn et al. [38], Emaus et al. [39], Koitaya et al. [40] |
| OC | 9 | Yasui et al. [34], Ushiroyama et al. [35], Jiang et al. [36], Knapen et al. [37], Rønn et al. [38], Emaus et al. [39], Koitaya et al. [40], Inaba et al. [41], Kazdin [42] |
| Gla/Cr and Gla-OC/Gla-OC+ucOC ratio | 2 | Ushiroyama et al. [35], Jiang et al. [36] |
| ucOC: cOC or cOC: ucOC ratio | 3 | Emaus et al. [39], Koitaya et al. [40], Kazdin [42] |
| BAP and BSAP | 4 | Ushiroyama et al. [35], Knapen et al. [37], Rønn et al. [38], Emaus et al. [39] |
| PINP and PICP | 3 | Jiang et al. [36], Rønn et al. [38], Emaus et al. [39] |
| CTX and CL | 2 | Rønn et al. [38], Emaus et al. [39] |
| NTX (nM) or NTX/Cr ratio | 2 | Knapen et al. [37], Inaba et al. [41] |
| DPD and urinary pyridinoline | 3 | Ushiroyama et al. [35], Jiang et al. [36], Inaba et al. [41] |
BMD, bone mineral density; OC, osteocalcin; Gla, γ-carboxyglutamate; ucOC, undercarboxylated osteocalcin; BAP, bone alkaline phosphate; PINP, procollagen type 1 N-terminal propeptide; PICP, carboxyterminal propeptide of type I procollagen; CTX, C-terminal telopeptide of type I collagen; CL, crosslaps; NTX, N-terminal telopeptide levels; DPD, deoxypyridinoline.
OC, osteocalcin; ucOC, undercarboxylated OC; cOC, carboxylated OC; Gla-OC, γ-carboxylated OC; Cr, creatinine; BAP, bone alkaline phosphatase; BSAP, bone-specific alkaline phosphatase; PINP, procollagen type 1 N-terminal propeptide; PICP, propeptide of type I procollagen; NTX, N-terminal telopeptide levels; CTX, C-terminal telopeptide of type I collagen; CL, crosslaps; DPD, deoxypyridinoline; N-mid, N-terminal/midregion.
BMD, bone mineral density; aBMD, areal bone mineral density; vBMD, volumetric bone mineral density; BMC, bone mineral content; OC, osteocalcin; sOC, serum osteocalcin; tOC, total osteocalcin; cOC, carboxylated osteocalcin; ucOC, undercarboxylated osteocalcin; BAP, bone-specific alkaline phosphate; NTX, N-terminal telopeptide levels; DPD, deoxypyridinoline; CL, crosslaps; SD, standard deviation; PINP, procollagen type 1 N-terminal propeptide; PICP, carboxyterminal propeptide of type I procollagen; CTX, C-terminal telopeptide of type I collagen; Gla, γ–carboxyglutaminate; APTT, activated partial thromboplastin time; AT-III, antithrombin III; PK, phylloquinone; MK-4, menaquinone-4; DPD, deoxypyridinoline; OH(25)D3, 25-hydroxy-vitamin D3; BCE, bone collagen equivalents; Cr, creatinine.
BMD, bone mineral density; OC, osteocalcin; Gla, γ-carboxyglutamate; ucOC, undercarboxylated osteocalcin; BAP, bone alkaline phosphate; PINP, procollagen type 1 N-terminal propeptide; PICP, carboxyterminal propeptide of type I procollagen; CTX, C-terminal telopeptide of type I collagen; CL, crosslaps; NTX, N-terminal telopeptide levels; DPD, deoxypyridinoline.