World's Best Scientists 2026 revealed!
Vinicio Granados-Soto

Vinicio Granados-Soto

D-Index & Metrics

Neuroscience

D-Index
51
Citations
7158
World Ranking
5614
National Ranking
7

Vinicio Granados-Soto publication distribution in Neuroscience in 2026

The chart shows the distribution of publications by all Research.com ranked scientists in the field of Neuroscience in 2026. The highlighted bar marks where Vinicio Granados-Soto sits on this spectrum.

38–47 publications: 18 scientists 48–57 publications: 79 scientists 58–67 publications: 193 scientists 68–77 publications: 323 scientists 78–87 publications: 406 scientists 88–97 publications: 452 scientists 98–107 publications: 539 scientists 108–117 publications: 505 scientists 118–127 publications: 522 scientists 128–137 publications: 469 scientists 138–147 publications: 456 scientists 148–157 publications: 459 scientists 158–167 publications: 397 scientists 168–177 publications: 383 scientists 178–187 publications: 350 scientists 188–197 publications: 302 scientists 198–207 publications: 306 scientists 208–217 publications: 262 scientists 218–227 publications: 242 scientists 228–237 publications: 220 scientists 238–247 publications: 203 scientists 248–257 publications: 174 scientists 258–267 publications: 176 scientists 268–277 publications: 175 scientists 278–287 publications: 125 scientists 288–297 publications: 116 scientists 298–307 publications: 127 scientists 308–317 publications: 128 scientists 318–327 publications: 99 scientists 328–337 publications: 89 scientists 338–347 publications: 78 scientists 348–357 publications: 96 scientists 358–367 publications: 66 scientists 368–377 publications: 59 scientists 378–387 publications: 65 scientists 388–397 publications: 54 scientists 398–407 publications: 48 scientists 408–417 publications: 49 scientists 418–427 publications: 34 scientists 428–437 publications: 31 scientists 438–447 publications: 30 scientists 448–457 publications: 31 scientists 458–467 publications: 36 scientists 468–477 publications: 40 scientists 478–487 publications: 35 scientists 488–497 publications: 30 scientists 498–507 publications: 23 scientists 508–517 publications: 26 scientists 518–527 publications: 20 scientists 528–537 publications: 23 scientists 538–547 publications: 20 scientists 548–557 publications: 20 scientists 558–567 publications: 17 scientists 568–577 publications: 14 scientists 578–587 publications: 20 scientists 588–597 publications: 20 scientists 598–607 publications: 19 scientists 608–617 publications: 18 scientists 618–627 publications: 17 scientists 628–637 publications: 11 scientists 638–647 publications: 11 scientists 648–657 publications: 11 scientists 658–667 publications: 8 scientists 668–677 publications: 7 scientists 678–687 publications: 11 scientists 688–697 publications: 10 scientists 698–707 publications: 4 scientists 708–717 publications: 6 scientists 718–727 publications: 5 scientists 728–737 publications: 5 scientists 738–747 publications: 9 scientists 748–757 publications: 9 scientists 758–767 publications: 3 scientists 768–777 publications: 7 scientists 778–787 publications: 7 scientists 788–797 publications: 6 scientists 798–807 publications: 2 scientists 808–817 publications: 2 scientists 818–827 publications: 7 scientists 828–837 publications: 0 scientists 838–847 publications: 9 scientists 848–857 publications: 3 scientists 858–867 publications: 1 scientists 868–877 publications: 3 scientists 878–886 publications: 6 scientists 887+ publications: 100 scientists
38 publications 887+

This scientist: 198 publications — 61st percentile

61% of scientists in this discipline score the same or lower.

The last bar groups every scientist with 887 publications or more.

Vinicio Granados-Soto D-index placement in Neuroscience in 2026

The chart shows the D-index (discipline H-index) distribution of Neuroscience scientists ranked by Research.com in 2026. The highlighted bar marks where Vinicio Granados-Soto sits on this spectrum.

30–31 D-Index: 42 scientists 32–33 D-Index: 172 scientists 34–35 D-Index: 296 scientists 36–37 D-Index: 435 scientists 38–39 D-Index: 459 scientists 40–41 D-Index: 456 scientists 42–43 D-Index: 467 scientists 44–45 D-Index: 478 scientists 46–47 D-Index: 512 scientists 48–49 D-Index: 435 scientists 50–51 D-Index: 425 scientists 52–53 D-Index: 418 scientists 54–55 D-Index: 392 scientists 56–57 D-Index: 357 scientists 58–59 D-Index: 334 scientists 60–61 D-Index: 328 scientists 62–63 D-Index: 260 scientists 64–65 D-Index: 278 scientists 66–67 D-Index: 239 scientists 68–69 D-Index: 250 scientists 70–71 D-Index: 210 scientists 72–73 D-Index: 200 scientists 74–75 D-Index: 189 scientists 76–77 D-Index: 170 scientists 78–79 D-Index: 146 scientists 80–81 D-Index: 113 scientists 82–83 D-Index: 126 scientists 84–85 D-Index: 100 scientists 86–87 D-Index: 84 scientists 88–89 D-Index: 99 scientists 90–91 D-Index: 84 scientists 92–93 D-Index: 85 scientists 94–95 D-Index: 72 scientists 96–97 D-Index: 76 scientists 98–99 D-Index: 45 scientists 100–101 D-Index: 49 scientists 102–103 D-Index: 43 scientists 104–105 D-Index: 32 scientists 106–107 D-Index: 45 scientists 108–109 D-Index: 50 scientists 110–111 D-Index: 32 scientists 112–113 D-Index: 39 scientists 114–115 D-Index: 32 scientists 116–117 D-Index: 29 scientists 118–119 D-Index: 27 scientists 120–121 D-Index: 19 scientists 122–123 D-Index: 23 scientists 124–125 D-Index: 27 scientists 126–127 D-Index: 16 scientists 128–129 D-Index: 24 scientists 130–131 D-Index: 13 scientists 132–133 D-Index: 21 scientists 134–135 D-Index: 17 scientists 136–137 D-Index: 14 scientists 138–139 D-Index: 15 scientists 140–141 D-Index: 10 scientists 142–143 D-Index: 10 scientists 144–145 D-Index: 13 scientists 146–147 D-Index: 9 scientists 148–149 D-Index: 8 scientists 150–151 D-Index: 6 scientists 152–153 D-Index: 6 scientists 154–155 D-Index: 7 scientists 156–157 D-Index: 7 scientists 158–159 D-Index: 10 scientists 160–161 D-Index: 4 scientists 162 D-Index: 8 scientists 163+ D-Index: 100 scientists
30 D-Index 163+

This scientist: 51 D-Index — 44th percentile

44% of scientists in this discipline score the same or lower.

The last bar groups every scientist with 163 D-Index or more.

Overview

Vinicio Granados-Soto is affiliated with CINVESTAV in Mexico and has contributed extensively to the fields of Medicine and Neuroscience. Their research predominantly focuses on Pain Mechanisms and Treatments, covering a significant portion of their publications. Additional areas of study include Neuroscience and Neuropharmacology Research, Neuropeptides and Animal Physiology, Circadian rhythm and melatonin, Fibromyalgia and Chronic Fatigue Syndrome Research, Pharmacological Effects of Natural Compounds, and Botulinum Toxin and Related Neurological Disorders.

The subfields within their work highlight a multidisciplinary approach involving Physiology, Cellular and Molecular Neuroscience, Molecular Biology, Pharmacology, and Neurology. These subfields reflect the complex biological and chemical processes explored in their research.

Recent papers authored or coauthored by Vinicio Granados-Soto include:

  • Type I Interferons Act Directly on Nociceptors to Produce Pain Sensitization: Implications for Viral Infection-Induced Pain (2020), Journal of Neuroscience
  • Metformin: A Prospective Alternative for the Treatment of Chronic Pain (2020), Frontiers in Pharmacology
  • Sex-dependent pronociceptive role of spinal α5-GABAA receptor and its epigenetic regulation in neuropathic rodents (2020), Journal of Neurochemistry
  • The role of spinal cord extrasynaptic α 5 GABA A receptors in chronic pain (2021), Physiological Reports
  • Sex-dependent antiallodynic effect of α2 adrenergic receptor agonist tizanidine in rats with experimental neuropathic pain (2022), European Journal of Pharmacology

Vinicio Granados-Soto frequently publishes in several scientific journals, with multiple contributions in:

  • European Journal of Pharmacology
  • Frontiers in Pharmacology
  • Pain
  • Journal of Pain
  • Pharmaceuticals

The scientist collaborates regularly with several coauthors, demonstrating sustained research partnerships. Frequent coauthors include:

  • Erick J. Rodríguez-Palma
  • Janet Murbartián
  • Rodolfo Delgado-Lezama
  • Yarim Elideth De la Luz-Cuellar
  • Myrna Déciga-Campos

Best Publications

  • Melatonin: a hormone that modulates pain.

    Mónica Ambriz-Tututi;Héctor I. Rocha-González;Silvia L. Cruz;Vinicio Granados-Soto

  • Resveratrol: a natural compound with pharmacological potential in neurodegenerative diseases.

    Héctor I Rocha-González;Mónica Ambriz-Tututi;Vinicio Granados-Soto

  • The NO-cGMP-K+ channel pathway participates in the antinociceptive effect of diclofenac, but not of indomethacin.

    Mario I. Ortiz;Vinicio Granados-Soto;Vinicio Granados-Soto;Gilberto Castañeda-Hernández

  • Spinal PKC activity and expression: role in tolerance produced by continuous spinal morphine infusion.

    Vinicio Granados-Soto;Iveta Kalcheva;Xiao-Ying Hua;Alexandra Newton

  • Participation of the nitric oxide-cyclic GMP-ATP-sensitive K(+) channel pathway in the antinociceptive action of ketorolac.

    Guadalupe G Lázaro-Ibáñez;Jorge E Torres-López;Jorge E Torres-López;Vinicio Granados-Soto

  • Evidence for the involvement of the nitric oxide-cGMP pathway in the antinociception of morphine in the formalin test.

    Vinicio Granados-Soto;Marcelo de O Rufino;Lúcia D Gomes Lopes;Sérgio H Ferreira

  • Comparison of the antinociceptive effect of celecoxib, diclofenac and resveratrol in the formalin test.

    Jorge E Torres-López;Jorge E Torres-López;Mario I Ortiz;Mario I Ortiz;Gilberto Castañeda-Hernández;Rosario Alonso-López

  • Pharmacological evidence for the activation of K(+) channels by diclofenac.

    Mario I Ortiz;Jorge E Torres-López;Jorge E Torres-López;Gilberto Castañeda-Hernández;Rodolfo Rosas

  • Thiamine and cyanocobalamin relieve neuropathic pain in rats: synergy with dexamethasone.

    Nadia L. Caram-Salas;Gerardo Reyes-García;Roberto Medina-Santillán;Vinicio Granados-Soto

  • Benfotiamine relieves inflammatory and neuropathic pain in rats.

    Gabriela M. Sánchez-Ramírez;Nadia L. Caram-Salas;Héctor I. Rocha-González;Guadalupe C. Vidal-Cantú

  • Oral and spinal melatonin reduces tactile allodynia in rats via activation of MT2 and opioid receptors.

    Mónica Ambriz-Tututi;Vinicio Granados-Soto

  • Pronociceptive role of peripheral and spinal 5-HT7 receptors in the formalin test.

    Héctor I. Rocha-González;Alfredo Meneses;Susan M. Carlton;Vinicio Granados-Soto

  • The peripheral antinociceptive effect of resveratrol is associated with activation of potassium channels.

    V Granados-Soto;C.F Argüelles;M.I Ortiz;M.I Ortiz

  • Evidence for the involvement of nitric oxide in the antinociceptive effect of ketorolac

    Vinicio Granados-Soto;Francisco J. Flores-Murrieta;Gilberto Castañeda-Hernández;Francisco J. López-Muñoz

  • Selective melatonin MT2 receptor ligands relieve neuropathic pain through modulation of brainstem descending antinociceptive pathways.

    Martha Lopez-Canul;Enza Palazzo;Sergio Dominguez-Lopez;Livio Luongo

  • Melatonin reduces formalin-induced nociception and tactile allodynia in diabetic rats

    Rosaura Arreola-Espino;Héctor Urquiza-Marín;Mónica Ambriz-Tututi;Claudia Ivonne Araiza-Saldaña

  • Peripheral and central antinociceptive action of Na+-K+-2Cl- cotransporter blockers on formalin-induced nociception in rats.

    Vinicio Granados-Soto;Carlos F. Arguelles;Francisco J. Álvarez-Leefmans

  • Type I Interferons Act Directly on Nociceptors to Produce Pain Sensitization: Implications for Viral Infection-Induced Pain.

    Paulino Barragán-Iglesias;Paulino Barragán-Iglesias;Úrzula Franco-Enzástiga;Vivekanand Jeevakumar;Stephanie Shiers

  • Sildenafil produces antinociception and increases morphine antinociception in the formalin test

    Teresa Mixcoatl-Zecuatl;Patricia Aguirre-Bañuelos;Vinicio Granados-Soto

  • Some Prospective Alternatives for Treating Pain: The Endocannabinoid System and Its Putative Receptors GPR18 and GPR55

    Raquel Guerrero-Alba;Paulino Barragán-Iglesias;Abimael González-Hernández;Eduardo E. Valdez-Moráles

  • Evidence for a peripheral mechanism of action for the potentiation of the antinociceptive effect of morphine by dipyrone

    Patricia Aguirre-Bañuelos;Vinicio Granados-Soto

  • Possible participation of the nitric oxide-cyclic GMP-protein kinase G-K+ channels pathway in the peripheral antinociception of melatonin

    Alfonso Hernández-Pacheco;Claudia Ivonne Araiza-Saldaña;Vinicio Granados-Soto;Teresa Mixcoatl-Zecuatl

  • Role of spinal P2Y6 and P2Y11 receptors in neuropathic pain in rats: possible involvement of glial cells

    Paulino Barragán-Iglesias;Jorge Baruch Pineda-Farias;Claudia Cervantes-Durán;Mariana Bravo-Hernández

  • Differences in the Mechanism of Antinociceptive Action of Non‐steroidal Anti‐inflammatory Drugs in the Rat

    F. J. López‐Muñoz;G. Castañeda‐Hernández;J. E. Torres‐López;Y. F. Picazo

  • Short communication Evidence for the involvement of the nitric oxide-cGMP pathway in the antinociception of morphine in the formalin test

    Vinicio Granados-Soto;Marcelo de O. Rufino;Lucia D. Gomes Lopes;Sergio H. Ferreira

Frequent Co-Authors

Theodore J. Price
Theodore J. Price The University of Texas at Dallas
Gregory Dussor
Gregory Dussor The University of Texas at Dallas
Enza Palazzo
Enza Palazzo University of Campania "Luigi Vanvitelli"
James P. Stables
James P. Stables National Institutes of Health
Peter Valent
Peter Valent Medical University of Vienna
Livio Luongo
Livio Luongo University of Campania "Luigi Vanvitelli"
Sabatino Maione
Sabatino Maione University of Campania "Luigi Vanvitelli"
Yoichi Ueta
Yoichi Ueta University of Occupational and Environmental Health Japan
Jennifer L. Whistler
Jennifer L. Whistler University of California, San Francisco
Giorgio Tarzia
Giorgio Tarzia University of Urbino

If you think any of the details on this page are incorrect, let us know.

Report an issue

We appreciate your kind effort to assist us to improve this page, it would be helpful providing us with as much detail as possible in the text box below:

Related Online Degrees & Career Pathways

If you’re interested in Neuroscience, there are several online degrees and career pathways to consider. Many students explore related majors that intersect with neuroscience, such as psychology, biomedical sciences, or even computer science for neuroinformatics roles. It’s wise to explore the most profitable majors if salary and job demand are important factors in your decision.

For those seeking flexible or affordable options, there are cheap online colleges that offer relevant degrees with accredited programs available fully online. This path can make it easier for students to balance their studies with other commitments.

Additionally, earning online certificates can help you develop specialized skills in areas such as neuroscience research methods, medical technology, or data analysis, boosting your employability in health or tech fields.

Finally, if you’re looking for a less intensive academic route, consider the easiest college majors that still align with your neuroscience interests. This approach can provide an accessible entry point to the broader field and future career options.

Best Scientists Citing Vinicio Granados-Soto

Trending Scientists