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Data from: A Deep Learning Approach for Fast Muscle Water T2 Mapping with Subject Specific Fat T2 Calibration from Multi-Spin-Echo Acquisitions
<p>This repository contains the imaging data (in NIfTI) and analysis code to reproduce the work presented in <em>"A Deep Learning Approach for Fast Muscle Water T2 Mapping with Subject Specific Fat T2 Calibration from Multi-Spin-Echo Acquisitions"</em> by <strong>Marco Barbieri, Melissa T. Hooijmans, Kevin Moulin, Tyler E. Cork, Daniel B. Ennis, Garry E. Gold, Feliks Kogan and Valentina Mazzoli.</strong></p> <p>Citation: "Barbieri, M., Hooijmans, M.T., Moulin, K. <em>et al.</em> A deep learning approach for fast muscle water T2 mapping with subject specific fat T2 calibration from multi-spin-echo acquisitions. <em>Sci Rep</em> 14, 8253 (2024). https://doi.org/10.1038/s41598-024-58812-2"</p> <p>The source code for setting up the Deep Learning application can be found in the GitHub repository https://github.com/barma7/Deep_Learning_for_Muscle_T2_mapping.git</p>
Quantitative Study Group: Fat Fraction
<p>Fat Fraction<br>============</p> <p>In this directory there are Fat Fraction datasets recorded using the Dixon 3-point method on a Siemens Prisma 3T MRI scanner. There are three time points: 3.45 ms, 4.60 ms, 5.75 ms. There is a magnitude mode image (35, 38, 41) and a phase image (36, 39, 42) for each time point, for each of 5 slices through the phantom.</p> <p> </p>
Therapeutic Potential of Nigella sativa Extract against Inflammatory Markers Interleukin-1ß (IL-1ß) and Tumor Necrosis Factor-α (TNF-α) in Rat Models with High Fat Diet
Open the record for dataset details and reuse information.
Determination of solid fat content in emulsions using TD-NMR FID-CPMG deconvolution
<p>Determination of solid fat content in emulsions using TD-NMR FID-CPMG deconvolution</p>
16S rDNA sequence data of research--Different periods of high-fat diet during peri-pregnancy cause variant offspring gut microbiota
<p> These are the 16S rRNA gene sequencing data based on the Illumina HiSeq2500 platform. Group a, b, c, d stand for group CD-CD, CD-HFD, HFD-CD, HFD-HFD separately. Each mouse of one group had two samples such as a1_1 and a1_2.</p>
Posterior cervical brown fat and CXCL14 levels in the first year of life: sex differences and association with adiposity
<p><span><span><span><span><span><span><span><span><span><span><span><b>Context:</b> Brown adipose tissue (BAT) is particularly abundant in neonates but its association with measures of adiposity and metabolic health in early infancy is poorly delineated. Besides sustaining non-shivering thermogenesis, BAT secretes brown adipokines that act on systemic metabolism. The chemokine CXCL14 has been identified as a brown adipokine in experimental studies.</span></span></span></span></span></span></span></span></span></span></span></p> <p><span><span><span><span><span><span><span><span><span><span><span><b>Objective:</b> To determine the relationships among BAT activity, adiposity and circulating CXCL14 levels in the first year of life in girls and boys.</span></span></span></span></span></span></span></span></span></span></span></p> <p><span><span><span><span><span><span><span><span><span><span><span><b>Design, setting and participants: </b>Indices of fat accretion, circulating endocrine-metabolic parameters and serum CXCL14 levels were assessed longitudinally in a cohort of infants at birth and at 4 and 12 months. BAT activity was estimated using infrared thermography only at age 12 months.</span></span></span></span></span></span></span></span></span></span></span></p> <p><span><span><span><span><span><span><span><span><span><span><span><b>Main outcome measures: </b>Weight and length Z-scores, total and abdominal fat content (by DXA), BAT activity at the posterior-cervical and supraclavicular regions, serum levels of glucose, insulin, insulin-like growth factor-I, high-molecular-weight adiponectin and CXCL14; CXCL14 transcript levels in neonatal BAT and liver.</span></span></span></span></span></span></span></span></span></span></span></p> <p><span><span><span><span><span><span><span><span><span><span><span><b>Results:</b> Posterior-cervical BAT was more active in girls than in boys (p=0.02). BAT activity was negatively associated with adiposity parameters only in girls. CXCL14 levels were higher in girls than in boys at age 12 months and correlated positively with the area of active posterior-cervical BAT in girls. Neonatal BAT showed high CXCL14 gene expression levels.</span></span></span></span></span></span></span></span></span></span></span></p> <p><span><span><span><span><span><span><span><span><span><span><span><b>Conclusions:</b> BAT activity and the levels of CXCL14 -a potential surrogate of BAT activity- are sex-specific in the first year of life. BAT activity associates negatively with indices of adiposity only in girls.</span></span></span></span></span></span></span></span></span></span></span></p>
A low molecular weight Saccharina japonica polysaccharide suppresses high fat diet-induced obesity and enriches gut bacteria with fucoidan-degrading potential
<p>This dataset contains 16S rRNA gene and metagenomic sequencing raw data involved in this study. Metagenomic data (S21H1887, S21H1888) were obtained from two cecal content samples from the LFD_J2H group due to<em> Akkermansia</em> uncultured bacterium was highly abundant in these samples. In addition, the code for JS divergence analysis is included.</p>
Supplement material from: Plasma levels of triglycerides and IL6 are associated with weight regain and fat mass expansion
<p><strong>Background/Objective:</strong> Long-term weight loss (WL) maintenance is the biggest challenge for overweight and obesity due to the almost unavoidable phenomenon of partial or even total weight regain (WR) after WL. In the current study we investigated the relations of (the changes of) adipocyte size and other risk biomarkers with WR during the follow up of the Yoyo dietary intervention.</p> <p><strong>Design:</strong> In this randomized controlled study, 48 overweight/obese participants underwent a (very) low calorie diet to lose weight, followed by a weight stable period of 4 weeks and a follow-up period of 9 months. Anthropometric measurements, adipocyte volume of abdominal subcutaneous adipose tissue and plasma metabolic parameters (FFA, TG, total cholesterol, glucose, insulin, HOMA-IR, IL6, ACE activity, RBP4) at the beginning and the end of the follow-up were analyzed.</p> <p><strong>Results:</strong> Our results show that changes of TG, IL6, HOMA-IR and ACE are significantly positively correlated with WR. Multiple linear regression analysis shows that only the changes of TG and IL6 remained significantly correlated with WR and increased body fat mass. Moreover, the change of HOMA-IR was tightly correlated with the change in TG. Surprisingly, the change of adipocyte volume during follow up was not correlated with WR nor with other factors, but positive correlations between adipocyte volume and HOMA-IR were found at the beginning and end of the follow up.</p> <p><strong>Conclusions: </strong>These results suggest that TG and IL6 are independently linked to WR via separate mechanisms, and that HOMA-IR and adipocyte volume may indirectly link to WR through the change of plasma TG.</p>
On following pages: 18. Hotson's Five-toed Jerboa (Scarturus hotsoni); 19. Small Five-toed Jerboa (Scarturus elaten; 20. Vinogradov's Jerboa (Pygeretmus shitkovi); 23. Lesser Fat-tailed Jerboa (Pygeretmus platyurus); 24. Dwarf Fat-tailed Jerboa (Pygeretmus Mongolian Three-toed Jerboa (Stylodipus andrews); 28. Thick-tailed Three-toed Jerboa (Stylodipus telum); 29. Dzungarian Three-toed Jerboa (Jaculus orientalis); 32. Blanford's Jerboa (Jaculus blanfordl); 33. Lesser Egyptian Jerboa (Jaculus jaculus); 34. African Jerboa (Scarturus vinogradovi); 21. Fourtoed Jerboa (Scarturus tetradactylus); 22. Greater Fat-tailed pumilio); 25. Comb-toed Jerboa (Paradipus ctenodactylus); 26. Northern Three-toed Jerboa (Dipus sagitta); 27. Jerboa (Stylodipus sungorus); 30. Lichtenstein's Jerboa (Eremodipus lichtensteini); 31. Greater Egyptian Hammada Jerboa (Jaculus hirtipes); 35. Arabian Jerboa (Jaculus loftusi). in Dipodidae
On following pages: 18. Hotson's Five-toed Jerboa (Scarturus hotsoni); 19. Small Five-toed Jerboa (Scarturus elaten; 20. Vinogradov's Jerboa (Pygeretmus shitkovi); 23. Lesser Fat-tailed Jerboa (Pygeretmus platyurus); 24. Dwarf Fat-tailed Jerboa (Pygeretmus Mongolian Three-toed Jerboa (Stylodipus andrews); 28. Thick-tailed Three-toed Jerboa (Stylodipus telum); 29. Dzungarian Three-toed Jerboa (Jaculus orientalis); 32. Blanford's Jerboa (Jaculus blanfordl); 33. Lesser Egyptian Jerboa (Jaculus jaculus); 34. African Jerboa (Scarturus vinogradovi); 21. Fourtoed Jerboa (Scarturus tetradactylus); 22. Greater Fat-tailed pumilio); 25. Comb-toed Jerboa (Paradipus ctenodactylus); 26. Northern Three-toed Jerboa (Dipus sagitta); 27. Jerboa (Stylodipus sungorus); 30. Lichtenstein's Jerboa (Eremodipus lichtensteini); 31. Greater Egyptian Hammada Jerboa (Jaculus hirtipes); 35. Arabian Jerboa (Jaculus loftusi).
On following pages: 37 Northern Giant Pouched Rat (Cricetomys gambianus); 38. Kivu Giant Pouched Rat (Cricetomys kivuensis); 39. Southern Giant Pouched Rat (Cricetomys ansorgel); 40. East African Pouched Mouse (Saccostomus mearnsi); 41. Gray-bellied Pouched Mouse (Saccostomus umbriventer); 42. Southern African Pouched Mouse (Saccostomus campestris); 43. Nikolaus's African Climbing Mouse (Megadendromus nikolaus)); 44. Lachaise's African Climbing Mouse (Dendromus lachaisei); 45. Cameroon African Climbing Mouse (Dendromus oreas); 46. Banana African Climbing Mouse (Dendromus messorius): 47. Rupp's African Climbing Mouse (Dendromus ruppl); 48. Lovat's African Climbing Mouse (Dendromuslovati); 49. Mount Kahuzi African Climbing Mouse (Dendromus kahuziensis); 50. Montane African Climbing Mouse (Dendromus insignis); 51. Vernay's African Climbing Mouse (Dendromus vernayl); 52. Monard's African Climbing Mouse (Dendromus leucostomus); 53. Kivu African Climbing Mouse (Dendromus nyasae); 54. Nyika African Climbing Mouse (Dendromus nyikae); 55. Chestnut African Climbing Mouse (Dendromus mystacalis); 56. Gray African Climbing Mouse (Dendromus melanotis); 57 Brants's African Climbing Mouse (Dendromus mesomelas): 58. Velvet African Climbing Mouse (Dendroprionomys rousselot)); 59. Bates's African Climbing Mouse (Prionomys bates); 60. North-western Fat Mouse (Steatomys caurinus); 61. Dainty Fat Mouse (Steatomys cuppedius); 62. Jackson's Fat Mouse (Steatomys jackson); 63. Pousargues's Fat Mouse (Steatomys opimus); 64. Bocage's Fat Mouse (Steatomys bocage); 65. Tiny Fat Mouse (Steatomys parvus); 66. Common Fat Mouse (Steatomys pratensis); 67. Krebs's Fat Mouse (Steatomys krebsii): 68. Long-eared Desert Mouse (Malacothrix typical). in Nesomyidae
On following pages: 37 Northern Giant Pouched Rat (Cricetomys gambianus); 38. Kivu Giant Pouched Rat (Cricetomys kivuensis); 39. Southern Giant Pouched Rat (Cricetomys ansorgel); 40. East African Pouched Mouse (Saccostomus mearnsi); 41. Gray-bellied Pouched Mouse (Saccostomus umbriventer); 42. Southern African Pouched Mouse (Saccostomus campestris); 43. Nikolaus's African Climbing Mouse (Megadendromus nikolaus)); 44. Lachaise's African Climbing Mouse (Dendromus lachaisei); 45. Cameroon African Climbing Mouse (Dendromus oreas); 46. Banana African Climbing Mouse (Dendromus messorius): 47. Rupp's African Climbing Mouse (Dendromus ruppl); 48. Lovat's African Climbing Mouse (Dendromuslovati); 49. Mount Kahuzi African Climbing Mouse (Dendromus kahuziensis); 50. Montane African Climbing Mouse (Dendromus insignis); 51. Vernay's African Climbing Mouse (Dendromus vernayl); 52. Monard's African Climbing Mouse (Dendromus leucostomus); 53. Kivu African Climbing Mouse (Dendromus nyasae); 54. Nyika African Climbing Mouse (Dendromus nyikae); 55. Chestnut African Climbing Mouse (Dendromus mystacalis); 56. Gray African Climbing Mouse (Dendromus melanotis); 57 Brants's African Climbing Mouse (Dendromus mesomelas): 58. Velvet African Climbing Mouse (Dendroprionomys rousselot)); 59. Bates's African Climbing Mouse (Prionomys bates); 60. North-western Fat Mouse (Steatomys caurinus); 61. Dainty Fat Mouse (Steatomys cuppedius); 62. Jackson's Fat Mouse (Steatomys jackson); 63. Pousargues's Fat Mouse (Steatomys opimus); 64. Bocage's Fat Mouse (Steatomys bocage); 65. Tiny Fat Mouse (Steatomys parvus); 66. Common Fat Mouse (Steatomys pratensis); 67. Krebs's Fat Mouse (Steatomys krebsii): 68. Long-eared Desert Mouse (Malacothrix typical).
On following pages: 17. Fat Dormouse (Glis glis); 18. Hazel Dormouse (Muscardinus avellanarius); 19. Roach''s Mouse-tailed Dormouse (Myomimus roachi); 20. Setzer's Mouse-tailed Dormouse (Myomimus setzeri); 21. Ognev's Mouse-tailed Dormouse (Myomimus personatus); 22. Desert Dormouse (Selevinia betpakdalaensis); 23. Sichuan Dormouse (Chaetocauda sichuanensis); 24. Eurasian Forest Dormouse (Dryomys nitedula); 25. Woolly Forest Dormouse (Dryomys lanigen; 26. Niethammer's Forest Dormouse (Dryomys niethammeri); 27. Black-tailed Garden Dormouse (Eliomys melanurus); 28. European Garden Dormouse (Eliomys quercinus); 29. Maghreb Garden Dormouse (Eliomys munbyanus). in Gliridae
On following pages: 17. Fat Dormouse (Glis glis); 18. Hazel Dormouse (Muscardinus avellanarius); 19. Roach''s Mouse-tailed Dormouse (Myomimus roachi); 20. Setzer's Mouse-tailed Dormouse (Myomimus setzeri); 21. Ognev's Mouse-tailed Dormouse (Myomimus personatus); 22. Desert Dormouse (Selevinia betpakdalaensis); 23. Sichuan Dormouse (Chaetocauda sichuanensis); 24. Eurasian Forest Dormouse (Dryomys nitedula); 25. Woolly Forest Dormouse (Dryomys lanigen; 26. Niethammer's Forest Dormouse (Dryomys niethammeri); 27. Black-tailed Garden Dormouse (Eliomys melanurus); 28. European Garden Dormouse (Eliomys quercinus); 29. Maghreb Garden Dormouse (Eliomys munbyanus).
On following pages: 58. Kakadu Dunnart (Sminthopsis bind); 59. Butler's Dunnart (Sminthopsis butleri); 60. Fat-tailed Creek Dunnart (Sminthopsis douglasi); 63. Gilbert's Dunnart (Sminthopsis gilbert); 64. White-tailed Dunnart (Sminthopsis (Sminthopsis hirtipes); 67. White-footed Dunnart (Sminthopsis leucopus); 68. Greater Long-tailed Dunnart (Sminthopsis murina); 71. Ooldea Dunnart (Sminthopsis ooldea); 72. Sandhill Dunnart (Sminthopsis psammophila); 73. Red-cheeked Dunnart (Sminthopsis crassicaudata); 61. Little Long-tailed Dunnart (Sminthopsis dolichura); 62. Julia granulipes); 65. Grey-bellied Dunnart (Sminthopsis griseoventer); 66. Greater Hairy-footed Dunnart longicaudata); 69. Stripe-faced Dunnart (Sminthopsis macroura); 70. Common Dunnart (Sminthopsis Dunnart (Sminthopsis virginiae); 74. Lesser Hairy-footed Dunnart (Sminthopsis youngsoni). in Dasyuridae
On following pages: 58. Kakadu Dunnart (Sminthopsis bind); 59. Butler's Dunnart (Sminthopsis butleri); 60. Fat-tailed Creek Dunnart (Sminthopsis douglasi); 63. Gilbert's Dunnart (Sminthopsis gilbert); 64. White-tailed Dunnart (Sminthopsis (Sminthopsis hirtipes); 67. White-footed Dunnart (Sminthopsis leucopus); 68. Greater Long-tailed Dunnart (Sminthopsis murina); 71. Ooldea Dunnart (Sminthopsis ooldea); 72. Sandhill Dunnart (Sminthopsis psammophila); 73. Red-cheeked Dunnart (Sminthopsis crassicaudata); 61. Little Long-tailed Dunnart (Sminthopsis dolichura); 62. Julia granulipes); 65. Grey-bellied Dunnart (Sminthopsis griseoventer); 66. Greater Hairy-footed Dunnart longicaudata); 69. Stripe-faced Dunnart (Sminthopsis macroura); 70. Common Dunnart (Sminthopsis Dunnart (Sminthopsis virginiae); 74. Lesser Hairy-footed Dunnart (Sminthopsis youngsoni).
On following pages: 2. Crest-tailed Mulgara (Dasycercus cristicauda); 3. Kowari (Dasyuroides byrnei); 4. Kaluta (Dasykaluta rosamondae); 5. Dibbler (Parantechinus apicalis); 6. Woolley's Three-striped Dasyure (Myoictis leucura); 7. Miller's Three-striped Dasyure (Myoictis melas); 8. Wallace's Three-striped Dasyure (Myoictis wallacii); 9. Tate's Three-striped Dasyure (Myoictis wavicus); 10. Sandstone Pseudantechinus (Pseudantechinus bilarni); 11. Fat-tailed Pseudantechinus (Pseudantechinus macdonnellensis); 12. Carpentarian Pseudantechinus (Pseudantechinus mimulus); 13. Ningbing Pseudantechinus (Pseudantechinus ningbing); 14. Rory's Pseudantechinus (Pseudantechinus roryi); 15. Woolley's Pseudantechinus (Pseudantechinus woolleyae); 16. Speckled Dasyure (Neophascogale lorentzii); 17. Red-bellied Phascogale (Phascolosorex doriae); 18. Narrow-striped Dasyure (Phascolosorex dorsalis). in Dasyuridae
On following pages: 2. Crest-tailed Mulgara (Dasycercus cristicauda); 3. Kowari (Dasyuroides byrnei); 4. Kaluta (Dasykaluta rosamondae); 5. Dibbler (Parantechinus apicalis); 6. Woolley's Three-striped Dasyure (Myoictis leucura); 7. Miller's Three-striped Dasyure (Myoictis melas); 8. Wallace's Three-striped Dasyure (Myoictis wallacii); 9. Tate's Three-striped Dasyure (Myoictis wavicus); 10. Sandstone Pseudantechinus (Pseudantechinus bilarni); 11. Fat-tailed Pseudantechinus (Pseudantechinus macdonnellensis); 12. Carpentarian Pseudantechinus (Pseudantechinus mimulus); 13. Ningbing Pseudantechinus (Pseudantechinus ningbing); 14. Rory's Pseudantechinus (Pseudantechinus roryi); 15. Woolley's Pseudantechinus (Pseudantechinus woolleyae); 16. Speckled Dasyure (Neophascogale lorentzii); 17. Red-bellied Phascogale (Phascolosorex doriae); 18. Narrow-striped Dasyure (Phascolosorex dorsalis).
Supplemental Analysis of metabolomics data for the lipidome of fat body and heart HS fed W118 or CG4625 RNAi flies
<p>Full metabolomics of normalized peak height for fat body tissue from w1118 background and <em>CG4625</em> knockdown (via RNAi) flies fed a high-sugar diet for three weeks.</p>
On following pages: 78. Dwarf Fat-tailed Opossum (Thylamys velutinus); 79. Elegant Fat-tailed Opossum (Thylamys Mesopotamian Fat-tailed Opossum (Thylamys citellus); 83. Dry Chaco Fat-tailed Opossum (Thylamys pulchellus); 86. Argentine Fat-tailed Opossum (Thylamys sponsorius); 87 Buff-bellied Fat-tailed Opossum (Thylamys venustus elegans); 80. Pallid Fat-tailed Opossum (Thylamys pallidior); 81. Tate's Fat-tailed Opossum (Thylamys tate); 82. 84. Chacoan Fat-tailed Opossum (Thylamys pusillus); 85. Paraguayan Fat-tailed Opossum (Thylamys macrurus),). in Didelphidae
On following pages: 78. Dwarf Fat-tailed Opossum (Thylamys velutinus); 79. Elegant Fat-tailed Opossum (Thylamys Mesopotamian Fat-tailed Opossum (Thylamys citellus); 83. Dry Chaco Fat-tailed Opossum (Thylamys pulchellus); 86. Argentine Fat-tailed Opossum (Thylamys sponsorius); 87 Buff-bellied Fat-tailed Opossum (Thylamys venustus elegans); 80. Pallid Fat-tailed Opossum (Thylamys pallidior); 81. Tate's Fat-tailed Opossum (Thylamys tate); 82. 84. Chacoan Fat-tailed Opossum (Thylamys pusillus); 85. Paraguayan Fat-tailed Opossum (Thylamys macrurus),).
On following pages: 141. Shaw's Jird (Meriones shawii); 142. Tristram's Jird (Meriones tristrami); 143. Dahl's Jird (Meriones dahl); 144. Vinogradov's Jird (Meriones vinogradovi); 145. Buxton's Jird (Meriones sacrament); 146. King Jird (Meriones rex); 147. Arabian Jird (Meriones arimalius); 148. Persian Jird (Meriones persicus); 149. Zarudny's Jird (Meriones zarudnyi); 150. Indian Desert Jird (Meriones hurrianae); 151. Cheng''s Jird (Meriones cheng); 152. Midday Jird (Meriones meridianus); 153. Tamarisk Jird (Meriones tamariscinus); 154. Mongolian Jird (Meriones unguiculatus); 155. Przewalski's Jird (Brachiones przewalskii); 156. Fat Sand Rat (Psammomys obesus); 157. Lesser Sand Rat (Psammomys vexillaris), 158. Great Gerbil (Rhombomys opimus); 159. Bittner's African Forest Mouse (Leimacomys buettneri); 160. Maned Rat (Lophiomys imhausi). in Muridae
On following pages: 141. Shaw's Jird (Meriones shawii); 142. Tristram's Jird (Meriones tristrami); 143. Dahl's Jird (Meriones dahl); 144. Vinogradov's Jird (Meriones vinogradovi); 145. Buxton's Jird (Meriones sacrament); 146. King Jird (Meriones rex); 147. Arabian Jird (Meriones arimalius); 148. Persian Jird (Meriones persicus); 149. Zarudny's Jird (Meriones zarudnyi); 150. Indian Desert Jird (Meriones hurrianae); 151. Cheng''s Jird (Meriones cheng); 152. Midday Jird (Meriones meridianus); 153. Tamarisk Jird (Meriones tamariscinus); 154. Mongolian Jird (Meriones unguiculatus); 155. Przewalski's Jird (Brachiones przewalskii); 156. Fat Sand Rat (Psammomys obesus); 157. Lesser Sand Rat (Psammomys vexillaris), 158. Great Gerbil (Rhombomys opimus); 159. Bittner's African Forest Mouse (Leimacomys buettneri); 160. Maned Rat (Lophiomys imhausi).
On following pages: 116. Rupicolous Gerbil (Gerbillus rupicola); 117. Khartoum Gerbil (Gerbillus stigmonyx); 118. Berbera Gerbil (Gerbillus acticola); 119. Brockman's Gerbil (Gerbillus brockmani); 120. Dunn's Gerbil (Gerbillus dunni): 121. Mackilligin's Gerbil (Gerbillus mackilligini); 122. Least Gerbil (Gerbillus pusillus); 123. Rosalinda Gerbil (Gerbillus rosalinda); 124. Somalian Gerbil (Gerbillus somalicus); 125. Harwood's Gerbil (Gerbillus harwoodi); 126. Cheesman's Gerbil (Gerbillus cheesmani); 127. Wagner's Gerbil (Gerbillus dasyurus); 128. Black-tufted Gerbil (Gerbillus famulus); 129. Mesopotamian Gerbil (Gerbillus mesopotamiae); 130. Balochistan Gerbil (Gerbillus nanus): 131. Large Aden Gerbil (Gerbillus poecilops); 132. Swarthy Gerbil (Gerbillus aquilus); 133. Indian Hairy-footed Gerbil (Gerbillus gleadowi); 134. Somali Pygmy Gerbil (Microdillus peel); 135. Pouched Gerbil (Desmodilliscus braueri): 136. Fat-tailed Jird (Pachyuromys duprasi); 137. Bushy-tailed Jird (Sekeetamys calurus). in Muridae
On following pages: 116. Rupicolous Gerbil (Gerbillus rupicola); 117. Khartoum Gerbil (Gerbillus stigmonyx); 118. Berbera Gerbil (Gerbillus acticola); 119. Brockman's Gerbil (Gerbillus brockmani); 120. Dunn's Gerbil (Gerbillus dunni): 121. Mackilligin's Gerbil (Gerbillus mackilligini); 122. Least Gerbil (Gerbillus pusillus); 123. Rosalinda Gerbil (Gerbillus rosalinda); 124. Somalian Gerbil (Gerbillus somalicus); 125. Harwood's Gerbil (Gerbillus harwoodi); 126. Cheesman's Gerbil (Gerbillus cheesmani); 127. Wagner's Gerbil (Gerbillus dasyurus); 128. Black-tufted Gerbil (Gerbillus famulus); 129. Mesopotamian Gerbil (Gerbillus mesopotamiae); 130. Balochistan Gerbil (Gerbillus nanus): 131. Large Aden Gerbil (Gerbillus poecilops); 132. Swarthy Gerbil (Gerbillus aquilus); 133. Indian Hairy-footed Gerbil (Gerbillus gleadowi); 134. Somali Pygmy Gerbil (Microdillus peel); 135. Pouched Gerbil (Desmodilliscus braueri): 136. Fat-tailed Jird (Pachyuromys duprasi); 137. Bushy-tailed Jird (Sekeetamys calurus).
The effect of dietary supplementation with blueberry, cyanidin-3-O-β-glucoside, yoghurt and its peptides on gene expression associated with glucose metabolism in skeletal muscle obtained from a high-fat-high-carbohydrate diet induced obesity model
<p><span>Obesity is a leading global health problem contributing to various chronic diseases, including type II diabetes mellitus</span> <span>(T2DM). The aim of this study was to investigate whether blueberries, yoghurt, and their respective bioactive components, Cyanidin-3-O-β-glucoside (C3G) and peptides alone or in combinations, alter the expression of genes related to glucose metabolism in skeletal muscles from diet-induced obese mice. In extensor digitorum longus (EDL), yoghurt up-regulated the expression of activation of 5'adenosine monophosphate-activated protein kinase (AMPK), insulin receptor substrate-1 (IRS-1), phosphatidylinositol-3 kinase (PI3K) and glucose transporter 4 (GLUT4), and down-regulated the expression of angiotensin II receptor type 1 (AGTR-1). The combination of blueberries and yoghurt down-regulated the mRNA expression of AGTR-1 and Forkhead box protein O1 (FoxO1) in the EDL. Whereas the combination of C3G and peptides down-regulated AGTR-1 and up-regulated GLUT4 mRNA expression in the EDL. In the soleus, blueberries and yoghurt alone, and their combination down-regulated AGTR-1 and up-regulated GLUT4 mRNA expression. In summary blueberries and yoghurt, regulated multiple genes associated with glucose metabolism in skeletal muscles, and therefore may play a role in the management and prevention of T2DM.</span></p>
Appendix for the paper entitled Aerobic Threshold and Point of Maximal Fat Oxidation Agreement: Follow-up on a Systematic Review and Meta-Analysis on Association
<p>This is an appendix with all the data as well as the R software code developed for the multilevel meta-analysis on the agreement</p>
S1 Minimal Data Set for Selective Autonomic Stimulation of the AV Node Fat Pad to Control Rapid Post-Operative Atrial Arrhythmias
<p>Raw data files for figures on paper.</p>
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