Mixed Signals and Interspecies Variation in the Plasticity of Adult Mammal Brains
Bullet points
- Increased understanding of brain structural plasticity in mammals has led to increasing conceptual complexity and conflicting results in the field.
- The growing recognition of interspecies variation in neuroplasticity, from mice to humans, and the overlapping of cell markers in different cell populations are the main elements of confusion.
- Some cell types, cell markers, and biological processes markedly differ among species due to the non-linear sculpting that took place during evolution, including trade-offs in plasticity.
- The discovery of non-dividing, immature (late-maturing) neurons has increased the heterogeneity in brain plasticity and can explain some controversial findings.
- Understanding how brain structural plasticity has adapted to diverse mammalian neuroanatomies is essential for meaningful translational research.
Abstract
1. Introduction
2. Non-Canonical Neurogenic Processes
2.1. Neurogenesis Outside Canonical Neurogenic Niches: Parenchymal Neurogenesis

2.2. Postnatal Migration of Young Neurons to Their Committed Destination
2.3. Immature or Dormant Neurons

3. Interspecies Differences in Mammalian Neuroplasticity
3.1. Stem Cell-Dependent and -Independent Neurogenesis: The Trade-Off Hypothesis
3.2. Cell Markers Across Species: Useful Tools or Confounding Signals
3.3. Cell Heterogeneity Across Species: Insights and Pitfalls from Single-Cell Transcriptomics
4. Comparative Neuroplasticity: A Compromise Between Structural Changes and Functional Adaptation

4.1. Brain Diversity and Primate Evolution
4.2. Immature Neurons as a Further Element of Specialization
5. Existing Pitfalls and Challenges
5.1. Different Levels of Understanding of Immature Neurons in the Piriform Cortex, Neocortex, and Amygdala in Mammals
5.2. Immature Neuron Terminology: An Unresolved Issue
5.3. The Rabbit Exception and Neuroplasticity

5.4. Adult Neurogenesis in the Human Hippocampus
6. Conclusions and Future Perspectives
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
- Ismail, F.Y.; Fatemi, A.; Johnston, M.V. Cerebral Plasticity: Windows of Opportunity in the Developing Brain. Eur. J. Paediatr. Neurol. 2017, 21, 23–48. [Google Scholar] [CrossRef] [PubMed]
- Cushman, J.D.; Drew, M.R.; Krasne, F.B. The Environmental Sculpting Hypothesis of Juvenile and Adult Hippocampal Neurogenesis. Prog. Neurobiol. 2021, 199, 101961. [Google Scholar] [CrossRef]
- Bonfanti, L. Multiple Levels of Plasticity. In The Human Brain and Neuroplasticity; Guilford Press: New York, NY, USA, 2026; pp. 39–57. [Google Scholar]
- Kempermann, G. Environmental Enrichment, New Neurons and the Neurobiology of Individuality. Nat. Rev. Neurosci. 2019, 20, 235–245. [Google Scholar] [CrossRef]
- Scarmeas, N.; Stern, Y. Cognitive Reserve and Lifestyle. J. Clin. Exp. Neuropsychol. 2003, 25, 625–633. [Google Scholar] [CrossRef] [PubMed]
- Bao, H.; Song, J. Treating Brain Disorders by Targeting Adult Neural Stem Cells. Trends Mol. Med. 2018, 24, 991–1006. [Google Scholar] [CrossRef]
- Weil, Z.M.; Norman, G.J.; DeVries, A.C.; Nelson, R.J. The Injured Nervous System: A Darwinian Perspective. Prog. Neurobiol. 2008, 86, 48–59. [Google Scholar] [CrossRef]
- La Rosa, C.; Bonfanti, L. Searching for Alternatives to Brain Regeneration. Neural Reg. Res. 2021, 16, 2198–2199. [Google Scholar]
- Ghibaudi, M.; Zanone, A.; Bonfanti, L. Brain Structural Plasticity in Large-brained Mammals: Not Only Narrowing Roads. Neural Reg. Res. 2026, 21, 1669–1680. [Google Scholar] [CrossRef]
- Zolochevska, O.; Taglialatela, G. Non-demented Individuals with Alzheimer’s Disease Neuropathology: Resistance to Cognitive Decline May Reveal New Treatment Strategies. Curr. Pharm. Des. 2016, 22, 4063–4068. [Google Scholar] [CrossRef]
- Cabeza, R.; Albert, M.; Belleville, S.; Craik, F.M.; Duarte, A.; Grady, C.L.; Lindenberger, U.; Nyberg, L.; Park, D.C.; Reuter-Lorenz, P.A.; et al. Maintenance, Reserve and Compensation: The Cognitive Neuroscience of Healthy Ageing. Nat. Rev. Neurosci. 2018, 19, 701–710, Erratum in Nat. Rev. Neurosci. 2018, 19, 772. [Google Scholar] [CrossRef] [PubMed]
- Darwish, H.; Farran, N.; Assaad, S.; Chaaya, M. Cognitive Reserve Factors in a Developing Country: Education and Occupational Attainment Lower the Risk of Dementia in a Sample of Lebanese Older Adults. Front. Aging Neurosci. 2018, 10, 277. [Google Scholar] [CrossRef] [PubMed]
- Lois, C.; Alvarez-Buylla, A. Long-distance Neuronal Migration in the Adult Mammalian Brain. Science 1994, 264, 1145–1148. [Google Scholar] [CrossRef]
- Gage, F.H. Mammalian Neural Stem Cells. Science 2000, 287, 1433–1438. [Google Scholar] [CrossRef] [PubMed]
- Theodosis, D.T.; Poulain, D.A.; Oliet, S.H. Activity-dependent Structural and Functional Plasticity of Astrocyte-neuron Interactions. Physiol. Rev. 2008, 88, 983–1008. [Google Scholar] [CrossRef]
- Imayoshi, I.; Sakamoto, M.; Ohtsuka, T.; Takao, K.; Miyakawa, T.; Yamaguchi, M.; Mori, K.; Ikeda, T.; Itohara, S.; Kageyama, R. Roles of Continuous Neurogenesis in the Structural and Functional Integrity of the Adult Forebrain. Nat. Neurosci. 2008, 11, 1153–1161. [Google Scholar] [CrossRef]
- Holtmaat, A.; Svoboda, K. Experience-dependent Structural Synaptic Plasticity in the Mammalian Brain. Nat. Rev. Neurosci. 2009, 10, 647–658, Erratum in Nat. Rev. Neurosci. 2009, 10, 759. [Google Scholar] [CrossRef]
- Bond, A.M.; Ming, G.; Song, H. Adult Mammalian Neural Stem Cells and Neurogenesis: Five Decades Later. Cell Stem Cell 2015, 17, 385–395. [Google Scholar] [CrossRef]
- Lim, D.A.; Alvarez-Buylla, A. The Adult Ventricular-subventricular Zone (V-SVZ) and Olfactory Bulb (OB) Neurogenesis. Cold Spring Harb. Perspect. Biol. 2016, 8, a018820. [Google Scholar] [CrossRef] [PubMed]
- Bonetto, G.; Belin, D.; Káradóttir, R.T. Myelin: A Gatekeeper of Activity-dependent Circuit Plasticity? Science 2021, 374, 838. [Google Scholar] [CrossRef]
- Martino, G.; Pluchino, S.; Bonfanti, L.; Schwartz, M. Brain Regeneration in Physiology and Pathology: The Immune Signature Driving Therapeutic Plasticity of Neural Stem Cells. Physiol. Rev. 2011, 91, 1281–1304. [Google Scholar] [CrossRef] [PubMed]
- Obernier, K.; Alvarez-Buylla, A. Neural Stem Cells: Origin, Heterogeneity and Regulation in the Adult Mammalian Brain. Development 2019, 146, dev156059. [Google Scholar] [CrossRef] [PubMed]
- Paredes, M.F.; James, D.; Gil-Perotin, S.; Kim, H.; Cotter, J.A.; Ng, C.; Sandoval, K.; Rowitch, D.H.; Xu, D.; McQuillen, P.S.; et al. Extensive Migration of Young Neurons into the Infant Human Frontal Lobe. Science 2016, 354, aaf7073. [Google Scholar] [CrossRef] [PubMed]
- Zhou, Y.; Su, Y.; Li, S.; Kennedy, B.C.; Zhang, D.Y.; Bond, A.M.; Sun, Y.; Jacob, F.; Lu, L.; Hu, P.; et al. Molecular Landscapes of Human Hippocampal Immature Neurons Across Lifespan. Nature 2022, 607, 527–533. [Google Scholar] [CrossRef] [PubMed]
- Zhou, Y.; Su, Y.; Yang, Q.; Li, J.; Hong, Y.; Gao, T.; Zhong, Y.; Ma, X.; Jin, M.; Liu, X.; et al. Cross-species Analysis of Adult Hippocampal Neurogenesis Reveals Human-specific Gene Expression But Convergent Biological Processes. Nat. Neurosci. 2025, 28, 1820–1829. [Google Scholar] [CrossRef]
- Barker, J.M.; Boonstra, R.; Wojtowicz, J.M. From Pattern to Purpose: How Comparative Studies Contribute to Understanding the Function of Adult Neurogenesis. Eur. J. Neurosci. 2011, 34, 963–977. [Google Scholar] [CrossRef]
- Feliciano, D.M.; Bordey, A.; Bonfanti, L. Noncanonical Sites of Adult Neurogenesis in the Mammalian Brain. Cold Spring Harb. Perspect. Biol. 2015, 7, a018846. [Google Scholar] [CrossRef]
- Brown, J.P.; Couillard-Despres, S.; Cooper-Kuhn, C.M.; Winkler, J.; Aigner, L.; Kuhn, H.G. Transient Expression of Doublecortin During Adult Neurogenesis. J. Comp. Neurol. 2003, 467, 1–10. [Google Scholar] [CrossRef]
- Bonfanti, L. PSA-NCAM in Mammalian Structural Plasticity and Neurogenesis. Prog. Neurobiol. 2006, 80, 129–164. [Google Scholar] [CrossRef]
- Lipp, H.P.; Bonfanti, L. Adult Neurogenesis in Mammals: Variations and Confusions. Brain Behav. Evol. 2016, 87, 205–221. [Google Scholar] [CrossRef]
- La Rosa, C.; Parolisi, R.; Bonfanti, L. Brain Structural Plasticity: From Adult Neurogenesis to Immature Neurons. Front. Neurosci. 2020, 14, 75. [Google Scholar] [CrossRef]
- Bonfanti, L.; Peretto, P. Adult Neurogenesis in Mammals: A Theme with Many Variations. Eur. J. Neurosci. 2011, 34, 930–950. [Google Scholar] [CrossRef]
- Doetsch, F.; Caille, I.; Lim, D.A.; Garcìa-Verdugo, J.M.; Alvarez- Buylla, A. Subventricular Zone Astrocytes Are Neural Stem Cells in the Adult Mammalian Brain. Cell 1999, 97, 703–716. [Google Scholar] [CrossRef] [PubMed]
- Aimone, J.B.; Li, Y.; Lee, S.W.; Clemenson, G.D.; Deng, W.; Gage, F.H. Regulation and Function of Adult Neurogenesis: From Genes to Cognition. Physiol. Rev. 2014, 94, 991–1026. [Google Scholar] [CrossRef]
- Bonfanti, L. From Hydra Regeneration to Human Brain Structural Plasticity: A Long Trip Through Narrowing Roads. Sci. World J. 2011, 11, 1270–1299. [Google Scholar] [CrossRef] [PubMed]
- Patzke, N.; Spocter, M.A.; Karlsson, K.Æ.; Bertelsen, M.F.; Haagensen, M.; Chawana, R.; Streicher, S.; Kaswera, C.; Gilissen, E.; Alagaili, A.N.; et al. In Contrast to Many Other Mammals, Cetaceans Have Relatively Small Hippocampi that Appear to Lack Adult Neurogenesis. Brain Struct. Funct. 2015, 220, 361–383. [Google Scholar] [CrossRef]
- Alunni, A.; Bally-Cuif, L. A Comparative View of Regenerative Neurogenesis in Vertebrates. Development 2016, 143, 741–753. [Google Scholar] [CrossRef]
- Bolker, J.A. Animal Models in Translational Research: Rosetta Stone or Stumbling Block? BioEssays 2017, 39, 1700089. [Google Scholar] [CrossRef] [PubMed]
- Brenowitz, E.A.; Zakon, H.H. Emerging from the Bottleneck: Benefits of the Comparative Approach to Modern Neuroscience. Trends Neurosci. 2015, 38, 273–278. [Google Scholar] [CrossRef]
- Faykoo-Martinez, M.; Toor, I.; Holmes, M.M. Solving the Neurogenesis Puzzle: Looking for Pieces Outside the Traditional Box. Front. Neurosci. 2017, 11, 505. [Google Scholar] [CrossRef]
- La Rosa, C.; Bonfanti, L. Brain Plasticity in Mammals: An Example for the Role of Comparative Medicine in the Neurosciences. Front. Vet. Sci. 2018, 5, 274. [Google Scholar] [CrossRef]
- Cozzi, B.; Bonfanti, L.; Canali, E.; Minero, M. Brain waste: The Neglect of Animal Brains. Front. Neuroanat. 2020, 14, 573934. [Google Scholar] [CrossRef]
- Parolisi, R.; Cozzi, B.; Bonfanti, L. Humans and Dolphins: Decline and Fall of Adult Neurogenesis. Front. Neurosci. 2018, 12, 497. [Google Scholar] [CrossRef]
- Seki, T.; Hori, T.; Miyata, H.; Maehara, M.; Namba, T. Analysis of Proliferating Neuronal Progenitors and Immature Neurons in the Human Hippocampus Surgically Removed from Control and Epileptic Patients. Sci. Rep. 2019, 9, 18194. [Google Scholar] [CrossRef]
- Seki, T. Understanding the Real State of Human Adult Hippocampal Neurogenesis from Studies of Rodents and Non-human Primates. Front. Neurosci. 2020, 14, 839. [Google Scholar] [CrossRef] [PubMed]
- Cipriani, S.; Ferrer, A.; Arinica, I.; Kovacs, G.; Verney, C.; Nardelli, J.; Khung, S.; Delezoide, A.L.; Milenkovic, I.; Rasika, S.; et al. Hippocampal Radial Glial Subtypes and Their Neurogenic Potential in Human Fetuses and Healthy and Alzheimer Disease Adults. Cereb. Cortex 2018, 28, 2458–2478. [Google Scholar] [CrossRef] [PubMed]
- Sorrells, S.F.; Paredes, M.F.; Zhang, Z.; Kang, G.; Pastor-Alonso, O.; Biagiotti, S.; Page, C.E.; Sandoval, K.; Knox, A.; Connolly, A.; et al. Positive Controls in Adults and Children Support That Very Few, If Any, New Neurons Are Born in the Adult Human Hippocampus. J. Neurosci. 2021, 41, 2554–2565. [Google Scholar] [CrossRef]
- Moreno-Jimenéz, E.P.; Flor-Garcia, M.; Terreros-Roncal, J.; Rabano, A.; Cafini, F.; Pallas-Bazarra, N.; Avila, J.; Llorens-Martin, M. Adult Hippocampal Neurogenesis is Abundant in Neurologically Healthy Subjects and Drops Sharply in Patients with Alzheimer’s Disease. Nat. Med. 2019, 25, 554–560. [Google Scholar] [CrossRef]
- Tosoni, G.; Ayyildiz, D.; Bryois, J.; Macnair, W.; Fitzsimons, C.P.; Lucassen, P.J.; Salta, E. Mapping Human Adult Hippocampal Neurogenesis with Single-cell Transcriptomics: Reconciling Controversy or Fueling the Debate? Neuron 2023, 111, 1714–1731.e3. [Google Scholar] [CrossRef]
- Simard, S.; Matosin, N.; Mechawar, N. Adult Hippocampal Neurogenesis in the Human Brain: Updates, Challenges, and Perspectives. Neuroscientist 2025, 31, 141–158. [Google Scholar] [CrossRef] [PubMed]
- Bonfanti, L.; Seki, T. The PSA-NCAM-positive “Immature” Neurons: An Old Discovery Providing New Vistas on Brain Structural Plasticity. Cells 2021, 10, 2542. [Google Scholar] [CrossRef]
- Ponti, G.; Peretto, P.; Bonfanti, L. Genesis of Neuronal and Glial Progenitors in the Cerebellar Cortex of Peripuberal and Adult Rabbits. PLoS ONE 2008, 3, e2366. [Google Scholar] [CrossRef]
- Ghibaudi, M.; La Rosa, C.; Telitsyn, N.; Graïc, J.-M.; Faulkes, C.G.; Sherwood, C.C.; Bonfanti, L. Multispecies Characterization of Immature Neurons in the Mammalian Amygdala Reveals Their Expansion in Primates. PLoS Biol. 2025, 23, e3003322. [Google Scholar] [CrossRef]
- Palazzo, O.; La Rosa, C.; Piumatti, M.; Bonfanti, L. Do Large Brains of Long-living Mammals Prefer Non-newly Generated, Immature Neurons? Neural Regen. Res. 2018, 13, 633–634. [Google Scholar]
- Luzzati, F.; Peretto, P.; Aimar, P.; Ponti, G.; Fasolo, A.; Bonfanti, L. Glia Independent Chains of Neuroblasts Through the Subcortical Parenchyma of the Adult Rabbit Brain. Proc. Natl. Acad. Sci. USA 2003, 100, 13036–13041. [Google Scholar] [CrossRef]
- Luzzati, F.; De Marchis, S.; Fasolo, A.; Peretto, P. Neurogenesis in the Caudate Nucleus of the Adult Rabbit. J. Neurosci. 2006, 26, 609–621. [Google Scholar] [CrossRef] [PubMed]
- Bonfanti, L.; Ponti, G. Adult Mammalian Neurogenesis and the New Zealand White Rabbit. Vet. J. 2008, 175, 310–331. [Google Scholar] [CrossRef] [PubMed]
- Kokoeva, M.V.; Yin, H.; Flier, J.S. Neurogenesis in the Hypothalamus of Adult Mice: Potential Role in Energy Balance. Science 2005, 310, 679–683. [Google Scholar] [CrossRef]
- Lévy, F.; Batailler, M.; Meurisse, M.; Migaud, M. Adult Neurogenesis in Sheep: Characterization and Contribution to Reproduction and Behavior. Front. Neurosci. 2017, 11, 570. [Google Scholar] [CrossRef]
- Blackshaw, S. Why Has the Ability to Regenerate Following CNS Injury Been Repeatedly Lost Over the Course of Evolution? Front. Neurosci. 2022, 16, 831062. [Google Scholar]
- Ponti, G.; Peretto, P.; Bonfanti, L. A Subpial, Transitory Germinal Zone Forms Chains of Neuronal Precursors in the Rabbit Cerebellum. Dev. Biol. 2006, 294, 168–180. [Google Scholar] [CrossRef]
- Luzzati, F.; Nato, G.; Oboti, L.; Vigna, E.; Rolando, C.; Armentano, M.; Bonfanti, L.; Fasolo, A.; Peretto, P. Quiescent Neuronal Progenitors are Activated in the Juvenile Guinea Pig Lateral Striatum and Give Rise to Transient Neurons. Development 2014, 141, 4065–4075. [Google Scholar] [CrossRef]
- Boda, E.; Di Maria, S.; Rosa, P.; Taylor, V.; Abbracchio, M.P.; Buffo, A. Early Phenotypic Asymmetry of Sister Oligodendrocyte Progenitor Cells After Mitosis and its Modulation by Aging and Extrinsic Factors. Glia 2015, 63, 271–286. [Google Scholar] [CrossRef]
- Magnusson, J.P.; Göritz, C.; Tatarishvili, J.; Dias, D.O.; Smith, E.M.K.; Lindvall, O.; Kokaia, Z.; Frisén, J.A. Latent Neurogenic Program in Astrocytes Regulated by Notch Signaling in the Mouse. Science 2014, 346, 237–241. [Google Scholar] [CrossRef]
- Nato, G.; Caramello, A.; Trova, S.; Avataneo, V.; Rolando, C.; Taylor, V.; Buffo, A.; Peretto, P.; Luzzati, F. Striatal Astrocytes Produce Neuroblasts in an Excitotoxic Model of Huntington’s Disease. Development 2015, 142, 840–845. [Google Scholar] [CrossRef]
- Fogli, M.; Nato, G.; Greulich, P.; Pinto, J.; Ribodino, M.; Valsania, G.; Peretto, P.; Buffo, A.; Luzzati, F. Dynamic Spatiotemporal Activation of a Pervasive Neurogenic Competence in Striatal Astrocytes Supports Continuous Neurogenesis Following Injury. Stem Cell Rep. 2024, 19, 1432–1450. [Google Scholar] [CrossRef]
- Robel, S.; Berninger, B.; Gotz, M. The Stem Cell Potential of Glia: Lessons from Reactive Gliosis. Nat. Rev. Neurosci. 2011, 12, 88–104. [Google Scholar] [CrossRef] [PubMed]
- Altman, J. Autoradiographic and Histological Studies of Postnatal Neurogenesis. III. Dating the Time of Production and Onset of Differentiation of Cerebellar Microneurons in Rats. J. Comp. Neurol. 1969, 137, 433–458. [Google Scholar] [CrossRef] [PubMed]
- Abraham, H.; Tornoczky, T.; Kosztolanyi, G.; Seress, L. Cell Formation in the Cortical Layers of the Developing Human Cerebellum. Int. J. Dev. Neurosci. 2001, 19, 53–62. [Google Scholar] [CrossRef] [PubMed]
- Bayin, N.S.; Stephen, D.N.; Koche, R.; Alexandra, L.; Joyner, A.L. The Regenerative Potential of Adult Nestin+ Cerebellar Astroglia Is Limited Compared to in Neonates. bioRxiv 2025. [Google Scholar] [CrossRef]
- Mikkonen, M.; Soininen, B.M.; Kalviainen, R.; Tapiola, T.; Ylinen, A.; Vapalahti, M.; Paljarvi, L.; Pitkanen, A. Remodeling of Neuronal Circuitries in Human Temporal Lobe Epilepsy: Increased Expression of Highly Polysialylated Neural Cell Adhesion Molecule in the Hippocampus and the Entorhinal Cortex. Ann. Neurol. 1998, 44, 923–934. [Google Scholar] [CrossRef]
- Gould, E.; Reeves, A.J.; Graziano, M.S.; Gross, C.G. Neurogenesis in the Neocortex of Adult Primates. Science 1999, 286, 548–552. [Google Scholar] [CrossRef]
- Gould, E.; Vail, N.; Wagers, M.; Gross, C.G. Adult-generated Hippocampal and Neocortical Neurons in Macaques Have a Transient Existence. Proc. Natl. Acad. Sci. USA 2001, 98, 10910–10917. [Google Scholar] [CrossRef]
- Dayer, A.G.; Cleaver, K.M.; Abouantoun, T.; Cameron, H.A. New GABAergic Interneurons in the Adult Neocortex and Striatum Are Generated From Different Precursors. J. Cell Biol. 2005, 168, 415–427. [Google Scholar] [CrossRef]
- Bernier, P.; Bedard, A.; Vinet, J.; Lavesque, M.; Parent, A. Newly Generated Neurons in the Amygdala and Adjoining Cortex of Adult Primates. Proc. Natl. Acad. Sci. USA 2002, 99, 11464–11469. [Google Scholar] [CrossRef]
- Marlatt, M.W.; Philippens, I.; Manders, E.; Czéh, B.; Joels, M.; Krugers, H.; Lucassen, P.J. Distinct Structural Plasticity in the Hippocampus and Amygdala of the Middle-aged Common Marmoset (Callithrix jacchus). Exp. Neurol. 2011, 230, 291–301. [Google Scholar] [CrossRef]
- Paredes, M.F.; Sorrells, S.F.; Garcia-Verdugo, J.M.; Alvarez-Buylla, A. Brain Size and Limits to Adult Neurogenesis. J. Comp. Neurol. 2016, 524, 646–664. [Google Scholar] [CrossRef]
- Ponti, G.; Aimar, P.; Bonfanti, L. Cellular Composition and Cytoarchitecture of the Rabbit Subventricular Zone (SVZ) and Its Extensions in the Forebrain. J. Comp. Neurol. 2006, 498, 491–507. [Google Scholar] [CrossRef] [PubMed]
- Nascimento, M.A.; Biagiotti, S.; Herranz-Pérez, V.; Santiago, S.; Bueno, R.; Ye, C.J.; Abel, T.J.; Zhang, Z.; Rubio-Moll, J.S.; Kriegstein, A.R.; et al. Protracted Neuronal Recruitment in the Temporal Lobes of Young Children. Nature 2024, 626, 1056–1065. [Google Scholar] [CrossRef]
- Porter, D.D.L.; Henry, S.N.; Ahmed, S.; Rizzo, A.L.; Makhlouf, R.; Gregg, C.; Morton, P.D. Neuroblast Migration Along Cellular Substrates in the Developing Porcine Brain. Stem Cell Rep. 2022, 17, 2097–2110. [Google Scholar] [CrossRef] [PubMed]
- Sorrells, S.F. Which Neurodevelopmental Processes Continue in Humans After Birth? Front. Neurosci. 2024, 18, 1434508. [Google Scholar]
- Kim, J.Y.; Poddar, A.; Sandoval, K.; Chu, J.; Horton, E.; Cui, D.; Nakamura, K.; Lu, I.-L.; Mui, M.; Bartels, T.; et al. An Expanded Subventricular Zone Supports Postnatal Cortical Interneuron Migration in Gyrencephalic Brains. Nat. Neurosci. 2025, 28, 1598–1609. [Google Scholar] [CrossRef]
- Freixes, J.; Abdel-Rahman, F.E.S.; Nebbia, R.; Medina, L.; Desfilis, E. Postnatal Plasticity in the Olfactory System of the Juvenile Swine Brain. Brain Struct. Funct. 2025, 230, 152. [Google Scholar] [CrossRef] [PubMed]
- Kim, J.Y.; Paredes, M.F. Implications of Extended Inhibitory Neuron Development. Int. J. Mol. Sci. 2021, 22, 5113. [Google Scholar] [CrossRef]
- Horton, E.; Paredes, M.F. The Production and Functions of Caudal Ganglionic Eminence-derived Inhibitory Neurons. Trends Neurosci. 2025, 48, 570–581. [Google Scholar] [CrossRef]
- DeFelipe, J.; López-Cruz, P.L.; Benavides-Piccione, R.; Bielza, C.; Larrañaga, P.; Anderson, S.; Burkhalter, A.; Cauli, B.; Fairén, A.; Feldmeyer, D.; et al. New Insights into the Classification and Nomenclature of Cortical GABAergic Interneurons. Nat. Rev. Neurosci. 2013, 14, 202–216. [Google Scholar] [CrossRef]
- Krienen, F.M.; Goldman, M.; Zhang, Q.; Del Rosario, R.C.H.; Florio, M.; Machold, R.; Saunders, A.; Levandowski, K.; Zaniewski, H.; Schuman, B.; et al. Innovations Present in the Primate Interneuron Repertoire. Nature 2020, 586, 262–269, Erratum in Nature 2020, 588, E17. [Google Scholar] [CrossRef] [PubMed]
- De Marchis, S.; Fasolo, A.; Puche, A. Subventricular Zone-Derived Neuronal Progenitors Migrate into the Subcortical Forebrain of Postnatal Mice. J. Comp. Neurol. 2004, 476, 290–300. [Google Scholar] [CrossRef] [PubMed]
- Inta, D.; Alfonso, J.; von Engelhardt, J.; Kreuzberg, M.M.; Meyer, A.H.; van Hooft, J.A.; Monyer, H. Neurogenesis and Widespread Forebrain Migration of Distinct GABAergic Neurons from the Postnatal Subventricular Zone. Proc. Natl. Acad. Sci. USA 2008, 105, 20994–20999. [Google Scholar] [CrossRef]
- Le Magueresse, C.; Alfonso, A.; Khodosevich, K.; Arroyo Martin, A.A.; Bark, C.; Monyer, H. ‘Small Axonless Neurons’: Postnatally Generated Neocortical Interneurons with Delayed Functional Maturation. J. Neurosci. 2011, 31, 16731–16747. [Google Scholar] [CrossRef]
- Sorrells, S.F.; Paredes, M.F.; Velmeshev, D.; Herranz-Pérez, V.; Sandoval, K.; Mayer, S.; Chang, E.F.; Insausti, R.; Kriegstein, A.R.; Rubenstein, J.L.; et al. Immature Excitatory Neurons Develop During Adolescence in the Human Amygdala. Nat. Commun. 2019, 10, 2748. [Google Scholar] [CrossRef] [PubMed]
- Shapiro, L.A.; Ng, K.L.; Kinyamu, R.; Whitaker-Azmitia, P.; Geisert, E.E.; Blurton-Jones, M.; Zhou, Q.Y.; Ribak, C.E. Origin, Migration and Fate of Newly Generated Neurons in the Adult Rodent Piriform Cortex. Brain Struct. Funct. 2007, 212, 133–148. [Google Scholar] [CrossRef] [PubMed]
- Alderman, P.J.; Saxon, D.; Torrijos-Saiz, L.I.; Sharief, M.; Page, C.E.; Baroudi, J.K.; Biagiotti, S.W.; Butyrkin, V.A.; Melamed, A.; Kuo, C.T.; et al. Delayed Maturation and Migration of Excitatory Neurons in the Juvenile Mouse Paralaminar Amygdala. Neuron 2024, 112, 574–592.e10. [Google Scholar] [CrossRef]
- Gómez-Climent, M.A.; Castillo-Gómez, E.; Varea, E.; Guirado, R.; Blasco-Ibáñez, J.M.; Crespo, C.; Martínez-Guijarro, F.J.; Nácher, J. A Population of Prenatally Generated Cells in the Rat Paleocortex Maintains an Immature Neuronal Phenotype into Adulthood. Cereb. Cortex 2008, 18, 2229–2240. [Google Scholar] [CrossRef]
- Luzzati, F.; Bonfanti, L.; Fasolo, A.; Peretto, P. DCX and PSA-NCAM Expression Identifies a Population of Neurons Preferentially Distributed in Associative Areas of Different Pallial Derivatives and Vertebrate Species. Cereb. Cortex 2009, 19, 1028–1041. [Google Scholar] [CrossRef]
- Klempin, F.; Kronenberg, G.; Cheung, G.; Kettenmann, H.; Kempermann, G. Properties of Doublecortin-(DCX)-expressing Cells in the Piriform Cortex Compared to the Neurogenic Dentate Gyrus of Adult Mice. PLoS ONE 2011, 6, e25760. [Google Scholar] [CrossRef]
- Bonfanti, L.; Nacher, J. New Scenarios for Neuronal Structural Plasticity in Non-neurogenic Brain Parenchyma: The Case of Cortical Layer II Immature Neurons. Prog. Neurobiol. 2012, 98, 1–15. [Google Scholar] [CrossRef]
- Rotheneichner, P.; Belles, M.; Benedetti, B.; König, R.; Dannehl, D.; Kreutzer, C.; Zaunmair, P.; Engelhardt, M.; Aigner, L.; Nacher, J.; et al. Cellular Plasticity in the Adult Murine Piriform Cortex: Continuous Maturation of Dormant Precursors into Excitatory Neurons. Cereb. Cortex 2018, 28, 2610–2621. [Google Scholar] [CrossRef]
- Benedetti, B.; Dannehl, D.; König, R.; Coviello, S.; Kreutzer, C.; Zaunmair, P.; Jakubecova, D.; Weiger, T.M.; Aigner, L.; Nacher, J.; et al. Functional Integration of Neuronal Precursors in the Adult Murine Piriform Cortex. Cereb. Cortex 2020, 30, 1499–1515. [Google Scholar] [CrossRef] [PubMed]
- Ghibaudi, M.; Bonfanti, L. How Widespread Are the “Young” Neurons of the Mammalian Brain? Front. Neurosci. 2022, 16, 918616. [Google Scholar]
- Benedetti, B.; Couillard-Després, S. Why Would the Brain Need Dormant Neuronal Precursors? Front. Neurosci. 2022, 16, 877167. [Google Scholar]
- Seki, T.; Arai, Y. Expression of Highly Polysialylated NCAM in the Neocortex and Piriform Cortex of the Developing and the Adult Rat. Anat. Embryol. 1991, 184, 395–401. [Google Scholar] [CrossRef] [PubMed]
- Bonfanti, L.; Olive, S.; Poulain, D.A.; Theodosis, D.T. Mapping of the Distribution of Polysialylated Neural Cell Adhesion Molecule Throughout the Central Nervous System of the Adult Rat: An Immunohistochemical Study. Neuroscience 1992, 49, 419–436. [Google Scholar] [CrossRef]
- Ghibaudi, M.; Marchetti, N.; Vergnano, E.; La Rosa, C.; Benedetti, B.; Couillard-Despres, S.; Farioli-Vecchioli, S.; Bonfanti, L. Age-related Changes in Layer II Immature Neurons of the Murine Piriform Cortex. Front. Cell. Neurosci. 2023, 17, 1205173. [Google Scholar] [CrossRef]
- Benedetti, B.; Reisinger, M.; Hochwartner, M.; Gabriele, G.; Jakubecova, D.; Benedetti, A.; Bonfanti, L.; Couillard-Despres, S. The Awakening of Dormant Neuronal Precursors in the Adult and Aged Brain. Aging Cell 2023, 22, e13974. [Google Scholar] [CrossRef]
- Coviello, S.; Benedetti, B.; Jakubecova, D.; Belles, M.; Klimczak, P.; Gramuntell, Y.; Couillard-Despres, S.; Nacher, J. PSA Depletion Induces the Differentiation of Immature Neurons in the Piriform Cortex of Adult Mice. Int. J. Mol. Sci. 2021, 22, 5733. [Google Scholar] [CrossRef] [PubMed]
- Piumatti, M.; Palazzo, O.; La Rosa, C.; Crociara, P.; Parolisi, R.; Luzzati, F.; Lévy, F.; Bonfanti, L. Non-newly Generated, “Immature” Neurons in the Sheep Brain Are Not Restricted to Cerebral Cortex. J. Neurosci. 2018, 38, 826–842. [Google Scholar] [CrossRef]
- Saxon, D.; Alderman, P.J.; Sorrells, S.F.; Vicini, S.; Corbin, J.G. Neuronal Subtypes and Connectivity of the Adult Mouse Paralaminar Amygdala. eNeuro 2024, 11, ENEURO.0119-24.2024. [Google Scholar] [CrossRef]
- La Rosa, C.; Cavallo, F.; Pecora, A.; Chincarini, M.; Ala, U.; Faulkes, C.G.; Nacher, J.; Cozzi, B.; Sherwood, C.C.; Amrein, I.; et al. Phylogenetic Variation in Cortical Layer II Immature Neuron Reservoir of Mammals. eLife 2020, 9, e55456. [Google Scholar] [CrossRef]
- Pattaro, A.; Ghibaudi, M.; Corrente, C.; Telitsyn, N.; Graic, J.-M.; Aresu, L.; Sherwood, C.C.; Bonfanti, L. Phylogenetic Variation of Layer II Cortical Immature Neurons in Dog and Horse Confirms Covariance with Brain Size and Neocortical Surface. Brain Struct. Funct. 2025, 230, 115. [Google Scholar] [CrossRef] [PubMed]
- Fudge, J.; Decampo, D.; Becoat, K. Revisiting the Hippocampal-amygdala Pathway in Primates: Association with Immature-appearing Neurons. Neuroscience 2012, 212, 104–119. [Google Scholar] [CrossRef] [PubMed]
- Chareyron, L.J.; Banta Lavenex, P.; Amaral, D.G.; Lavenex, P. Life and Death of Immature Neurons in the Juvenile and Adult Primate Amygdala. Int. J. Mol. Sci. 2021, 22, 6691. [Google Scholar] [CrossRef]
- Yeung, M.S.; Zdunek, S.; Bergmann, O.; Bernard, S.; Salehpour, M.; Alkass, K.; Perl, S.; Tisdale, J.; Possnert, G.; Brundin, L.; et al. Dynamics of Oligodendrocyte Generation and Myelination in the Human Brain. Cell 2014, 159, 766–774. [Google Scholar] [CrossRef]
- Parolisi, R.; Cozzi, B.; Bonfanti, L. Non-neurogenic SVZ-like Niche in Dolphins, Mammals Devoid of Olfaction. Brain Struct. Funct. 2017, 222, 2625–2639. [Google Scholar] [CrossRef]
- König, R.; Benedetti, B.; Rotheneichner, P.; O’Sullivan, A.; Kreutzer, C.; Belles, M.; Nacher, J.; Weiger, T.M.; Aigner, L.; Couillard-Després, S. Distribution and Fate of DCX/PSA-NCAM Expressing Cells in the Adult Mammalian Cortex: A Local Reservoir for Adult Cortical Neuroplasticity? Front. Biol. 2016, 11, 193–213. [Google Scholar] [CrossRef]
- Page, C.E.; Biagiotti, S.W.; Alderman, P.J.; Sorrells, S.F. Immature Excitatory Neurons in the Amygdala Come of Age During Puberty. Dev. Cogn. Neurosci. 2022, 56, 101133. [Google Scholar] [CrossRef]
- Xiong, K.; Luo, D.W.; Patrylo, P.R.; Luo, X.G.; Struble, R.G.; Clough, R.W.; Yan, X.X. Doublecortin-expressing Cells Are Present in Layer II Across the Adult Guinea Pig Cerebral Cortex: Partial Colocalization with Mature Interneuron Markers. Exp. Neurol. 2008, 211, 271–282. [Google Scholar] [CrossRef] [PubMed]
- Cai, Y.; Xiong, K.; Chu, Y.; Luo, D.W.; Luo, X.G.; Yuan, X.Y.; Struble, R.G.; Clough, R.W.; Spencer, D.D.; Williamson, A.; et al. Doublecortin Expression in Adult Cat and Primate Cerebral Cortex Relates to Immature Neurons That Develop into GABAergic Subgroups. Exp. Neurol. 2009, 216, 342–356. [Google Scholar] [CrossRef] [PubMed]
- Zhang, X.-M.; Cai, Y.; Chu, Y.; Chen, E.-Y.; Feng, J.-C.; Luo, X.-G.; Xiong, K.; Struble, R.G.; Clough, R.W.; Patrylo, P.R.; et al. Doublecortin-expressing Cells Persist in the Associative Cerebral Cortex and Amygdala in Aged Nonhuman Primates. Front. Neuroanat. 2009, 3, 17. [Google Scholar] [CrossRef]
- Bloch, J.; Kaeser, M.; Sadeghi, Y.; Rouiller, E.M.; Redmond, D.E., Jr.; Brunet, J.F. Doublecortin-positive Cells in the Adult Primate Cerebral Cortex and Possible Role in Brain Plasticity and Development. J. Comp. Neurol. 2011, 519, 775–789. [Google Scholar] [CrossRef]
- Varea, E.; Castillo-Gomez, E.; Gomez-Climent, M.A.; Guirado, R.; Blasco-Ibanez, J.M.; Crespo, C.; Martinez-Guijarro, F.J.; Nacher, J. Differential Evolution of PSA-NCAM Expression During Aging of the Rat Telencephalon. Neurobiol. Aging 2009, 5, 808–818. [Google Scholar] [CrossRef]
- Martí-Mengual, U.; Varea, E.; Crespo, C.; Blasco-Ibanez, J.; Nacher, J. Cells Expressing Markers of Immature Neurons in the Amygdala of Adult Humans. Eur. J. Neurosci. 2013, 37, 10–22. [Google Scholar] [CrossRef] [PubMed]
- Chawana, R.; Patzke, N.; Alagaili, A.N.; Bennett, N.C.; Mohammed, O.B.; Kaswera-Kyamakya, C.; Gilissen, E.; Ihunwo, A.O.; Pettigrew, J.D.; Manger, P.R. The Distribution of Ki-67 and Doublecortin Immunopositive Cells in the Brains of Three Microchiropteran Species, Hipposideros fuliginosus, Triaenops persicus, and Asellia tridens. Anat. Rec. 2016, 299, 1548–1560. [Google Scholar] [CrossRef]
- Fasemore, T.M.; Patzke, N.; Kaswera-Kyamakya, C.; Gilissen, E.; Manger, P.R.; Ihunwo, A.O. The Distribution of Ki-67 and Doublecortin-immunopositive Cells in the Brains of Three Strepsirrhine Primates: Galago Demidoff, Perodicticus Potto, and Lemur Catta. Neuroscience 2018, 372, 46–57. [Google Scholar] [CrossRef] [PubMed]
- Bonfanti, L.; La Rosa, C.; Ghibaudi, M.; Sherwood, C.C. Adult Neurogenesis and “Immature” Neurons in Mammals: An Evolutionary Trade-off in Plasticity? Brain Struct. Funct. 2024, 229, 1775–1793. [Google Scholar] [CrossRef]
- Aboitiz, F.; Montiel, J.F. Olfaction, Navigation, and the Origin of Isocortex. Front. Neurosci. 2015, 9, 402. [Google Scholar] [CrossRef]
- Morizet, D.; Bally-Cuif, L. Reduced Adult Neurogenesis in Humans Results From a Tradeoff Rather Than Direct Negative Selection. BioEssays 2025, 47, e70041. [Google Scholar] [CrossRef]
- Kempermann, G.; Jessberger, S.; Steiner, B.; Kronenberg, G. Milestones of Neuronal Development in the Adult Hippocampus. Trends Neurosci. 2004, 27, 447–452. [Google Scholar] [CrossRef]
- Von Bohlen Und Halbach, O. Immunohistological Markers for Staging Neurogenesis in the Adult Hippocampus. Cell Tissue Res. 2007, 329, 409–420. [Google Scholar] [CrossRef]
- Sarnat, H.B. Immunocytochemical Markers of Neuronal Maturation in Human Diagnostic Neuropathology. Cell Tissue Res. 2015, 359, 279–294. [Google Scholar] [CrossRef]
- Ghibaudi, M.; Amenta, A.; Agosti, M.; Riva, M.; Graïc, J.-M.; Bifari, F.; Bonfanti, L. Consistency and Variation in Doublecortin and Ki67 Antigen Detection in the Brain Tissue of Different Mammals, Including Humans. Int. J. Mol. Sci. 2023, 24, 2514. [Google Scholar] [CrossRef] [PubMed]
- Bonfanti, L.; Charvet, C.J. Brain Plasticity in Humans and Model Systems: Advances, Challenges, and Future Directions. Int. J. Mol. Sci. 2021, 22, 9358. [Google Scholar] [CrossRef] [PubMed]
- Hagihara, H.; Murano, T.; Ohira, K.; Miwa, M.; Nakamura, K.; Miyakawa, T. Expression of Progenitor Cell/Immature Neuron Markers Does Not Present Definitive Evidence for Adult Neurogenesis. Mol. Brain 2019, 12, 108. [Google Scholar] [CrossRef] [PubMed]
- Møller, A.R. Neural Plasticity: For Good and Bad. Prog. Theor. Phys. Suppl. 2008, 173, 48–65. [Google Scholar] [CrossRef]
- Seblani, M.; Brezun, J.-M.; Féron, F.; Hoquet, T. Rethinking Plasticity: Analysing the Concept of “Destructive Plasticity” in the Light of Neuroscience Definitions. Eur. J. Neurosci. 2024, 60, 4798–4812. [Google Scholar] [CrossRef]
- Franjic, D.; Skarica, M.; Ma, S.; Arellano, J.I.; Tebbenkamp, A.T.; Choi, J.; Xu, C.; Li, Q.; Morozov, Y.M.; Andrijevic, D.; et al. Transcriptomic Taxonomy and Neurogenic Trajectories of Adult Human, Macaque, and Pig Hippocampal and Entorhinal Cells. Neuron 2022, 110, 452–469. [Google Scholar] [CrossRef]
- Simard, S.; Rahimian, R.; Davoli, M.A.; Théberge, S.; Matosin, N.; Turecki, G.T.; Nagy, C.; Mechawar, N. Spatial Transcriptomic Analysis of Adult Hippocampal Neurogenesis in the Human Brain. J. Psychiatry Neurosci. 2024, 49, E319–E333. [Google Scholar] [CrossRef]
- Zhang, H.; Li, J.; Ren, J.; Sun, S.; Ma, S.; Zhang, W.; Yu, Y.; Cai, Y.; Yan, K.; Li, W.; et al. Single-nucleus Transcriptomic Landscape of Primate Hippocampal Aging. Protein Cell 2021, 12, 695–716. [Google Scholar] [CrossRef]
- Ayhan, F.; Kulkarni, A.; Berto, S.; Sivaprakasam, K.; Douglas, C.; Lega, B.C.; Konopka, G. Resolving Cellular and Molecular Diversity Along the Hippocampal Anterior-to-posterior Axis in Humans. Neuron 2021, 109, 2091–2105. [Google Scholar] [CrossRef]
- Xiao, D.; Su, X.; Gao, H.; Li, X.; Qu, Y. The Roles of Lpar1 in Central Nervous System Disorders and Diseases. Front. Neurosci. 2021, 15, 710473. [Google Scholar] [CrossRef]
- Hao, Z.-Z.; Wei, J.-R.; Xiao, D.; Liu, R.; Xu, N.; Tang, L.; Huang, M.; Shen, Y.; Xing, C.; Huang, W.; et al. Single-cell Transcriptomics of Adult Macaque Hippocampus Reveals Neural Precursor Cell Populations. Nat. Neurosci. 2022, 25, 805–817. [Google Scholar] [CrossRef] [PubMed]
- Habib, N.; Avraham-Davidi, I.; Basu, A.; Burks, T.; Shekhar, K.; Hofree, K.; Choudhury, S.R.; Aguet, F.; Gelfand, E.; Ardlie, K.; et al. Massively Parallel Single-nucleus Rna-seq with Dronc-seq. Nat. Methods 2017, 14, 955–958. [Google Scholar] [CrossRef]
- Wang, W.; Wang, M.; Yang, M.; Zeng, B.; Qiu, W.; Ma, Q.; Jing, X.; Zhang, Q.; Wang, B.; Yin, C.; et al. Transcriptome Dynamics of Hippocampal Neurogenesis in Macaques Across the Lifespan and Aged Humans. Cell Res. 2022, 32, 729–743. [Google Scholar] [CrossRef]
- Thomson, J.R.; Nelson, E.D.; Tippani, M.; Ramnauth, A.D.; Divecha, H.R.; Miller, R.A.; Eagles, N.J.; Pattie, E.A.; Kwon, S.H.; Bach, S.V.; et al. An Integrated Single-nucleus and Spatial Transcriptomics Atlas Reveals the Molecular Landscape of the Human Hippocampus. Nat. Neurosci. 2025, 28, 1990–2004. [Google Scholar] [CrossRef]
- Ramnauth, A.D.; Tippani, M.; Divecha, H.R.; Papariello, A.R.; Miller, R.A.; Nelson, E.D.; Thompson, J.R.; Pattie, E.A.; Kleinman, J.E.; Maynard, K.R.; et al. Spatiotemporal Analysis of Gene Expression in the Human Dentate Gyrus Reveals Age-associated Changes in Cellular Maturation and Neuroinflammation. Cell Rep. 2025, 44, 115300. [Google Scholar] [CrossRef]
- Stickels, R.R.; Murray, E.; Kumar, P.; Li, J.; Marshall, J.L.; Di Bella, D.J.; Arlotta, P.; Macosko, E.Z.; Chen, F. Highly Sensitive Spatial Transcriptomics at Near-cellular Resolution with Slide-seqV2. Nat. Biotechnol. 2021, 39, 313–319. [Google Scholar] [CrossRef]
- Axelrod, C.J.; Gordon, S.P.; Carlson, B.A. Integrating Neuroplasticity and Evolution. Curr. Biol. 2023, 33, R283–R295. [Google Scholar] [CrossRef]
- Lindsey, B.W.; Tropepe, V. A Comparative Framework for Understanding the Biological Principles of Adult Neurogenesis. Prog. Neurobiol. 2006, 80, 281–307. [Google Scholar] [CrossRef] [PubMed]
- Sanai, N.; Nguyen, T.; Ihrie, R.A.; Mirzadeh, Z.; Tsai, H.-H.; Wong, M.; Gupta, N.; Berger, M.S.; Huang, E.; Garcia-Verdugo, J.M.; et al. Corridors of Migrating Neurons in the Human Brain and Their Decline During Infancy. Nature 2011, 478, 382–386. [Google Scholar] [CrossRef] [PubMed]
- Sorrells, S.F.; Paredes, M.F.; Cebrian-Silla, A.; Sandoval, K.; Qi, D.; Kelley, K.W.; James, D.; Mayer, S.; Chang, J.; Auguste, K.I.; et al. Human Hippocampal Neurogenesis Drops Sharply in Children to Undetectable Levels in Adults. Nature 2018, 555, 377–381. [Google Scholar] [CrossRef] [PubMed]
- Lancaster, M.A. Unraveling Mechanisms of Human Brain Evolution. Cell 2024, 187, 5838–5857. [Google Scholar] [CrossRef]
- Barron, A.B.; Mourmourakis, F. The Relationship Between Cognition and Brain Size or Neuron Number. Brain Behav. Evol. 2024, 99, 109–121. [Google Scholar] [CrossRef] [PubMed]
- Akula, S.K.; Exposito-Alonso, D.; Walsh, C.A. Shaping the Brain: The Emergence of Cortical Structure and Folding. Dev. Cell 2023, 58, 2836–2849. [Google Scholar] [CrossRef]
- Galakhova, A.A.; Hunt, S.; Wilbers, R.; Heyer, D.B.; de Kock, C.P.J.; Mansvelder, H.D.; Goriounova, N.A. Evolution of Cortical Neurons Supporting Human Cognition. Trends Cogn. Sci. 2022, 26, 909–922. [Google Scholar] [CrossRef] [PubMed]
- Vanderhaeghen, P.; Polleux, F. Developmental Mechanisms Underlying the Evolution of Human Cortical Circuits. Nat. Rev. Neurosci. 2023, 24, 213–232. [Google Scholar] [CrossRef]
- DeFelipe, J. The Evolution of the Brain, the Human Nature of Cortical Circuits, and Intellectual Creativity. Front. Neuroanat. 2011, 5, 29, Erratum in Front. Neuroanat. 2013, 7, 10. [Google Scholar] [CrossRef]
- Zilles, K.; Palomero-Gallagher, N.; Amunts, K. Development of Cortical Folding During Evolution and Ontogeny. Trends Neurosci. 2013, 36, 275–284. [Google Scholar] [CrossRef]
- Finlay, B.L. The Multiple Contexts of Brain Scaling: Phenotypic Integration in Brain and Behavioral Evolution. Brain Behav. Evol. 2022, 97, 83–95. [Google Scholar] [CrossRef]
- Brecht, M. Large Brains: Big Unknowns in Cellular Neuroscience. Curr. Opin. Neurobiol. 2025, 91, 102981. [Google Scholar] [CrossRef]
- Puelles, L.; Medina, L. Field Homology As a Way to Reconcile Genetic and Developmental Variability with Adult Homology. Brain Res. Bull. 2002, 57, 243–255. [Google Scholar] [CrossRef] [PubMed]
- Smulders, T.V. The Relevance of Brain Evolution for the Biomedical Sciences. Biol. Lett. 2009, 5, 138–140. [Google Scholar] [CrossRef][Green Version]
- Erclik, T.; Hartenstein, V.; McInnes, R.R.; Lipshitz, H.D. Eye Evolution at High Resolution: The Neuron as a Unit of Homology. Dev. Biol. 2009, 332, 70–79. [Google Scholar] [CrossRef] [PubMed]
- Herculano-Houzel, S.; Avelino-de-Souza, K.; Neves, K.; Porfìrio, J.; Messeder, D.; Mattos Feijό, L.; Maldonado, J.; Manger, P.R. The Elephant Brain in Numbers. Front. Neuroanat. 2014, 8, 46. [Google Scholar] [CrossRef]
- Mortensen, H.S.; Pakkenberg, B.; Dam, M.; Dietz, R.; Sonne, C.; Eriksen, M.B. Quantitative Relationships in Delphinid Neocortex. Front. Neuroanat. 2014, 8, 132. [Google Scholar] [CrossRef] [PubMed]
- Krubitzer, L. In Search of a Unifying Theory of Complex Brain Evolution. Ann. N. Y. Acad. Sci. 2009, 1156, 44–67. [Google Scholar] [CrossRef] [PubMed]
- Kaas, J.H. Evolution of Columns, Modules, and Domains in the Neocortex of Primates. Proc. Natl. Acad. Sci. USA 2012, 109, 10655–10660. [Google Scholar] [CrossRef]
- Hodge, R.D.; Bakken, T.E.; Miller, J.A.; Smith, K.A.; Barkan, E.R.; Graybuck, L.T.; Close, J.L.; Long, B.; Johansen, N.; Penn, O.; et al. Conserved Cell Types with Divergent Features in Human Versus Mouse Cortex. Nature 2019, 573, 61–68. [Google Scholar] [CrossRef]
- Berg, J.; Sorensen, S.A.; Ting, J.T.; Miller, J.A.; Chartrand, T.; Buchin, A.; Bakken, T.E.; Budzillo, A.; Dee, N.; Ding, S.-L.; et al. Human Neocortical Expansion Involves Glutamatergic Neuron Diversification. Nature 2021, 598, 151–158, Erratum in Nature 2022, 601, E12. [Google Scholar] [CrossRef]
- Karl, M.T.; Kim, Y.D.; Rajendran, K.; Manger, P.R.; Sherwood, C.C. Invariance of Mitochondria and Synapses in the Primary Visual Cortex of Mammals Provides Insight into Energetics and Function. J. Comp. Neurol. 2024, 532, e25669. [Google Scholar] [CrossRef]
- Hutsler, J.J.; Lee, D.-G.; Porter, K.K. Comparative Analysis of Cortical Layering and Supragranular Layer Enlargement in Rodent Carnivore and Primate Species. Brain Res. 2005, 1052, 71–81. [Google Scholar] [CrossRef]
- Goulas, A.; Zilles, K.; Hilgetag, C.C. Cortical Gradients and Laminar Projections in Mammals. Trends Neurosci. 2018, 41, 775–788. [Google Scholar] [CrossRef]
- de Sousa, A.A.; Rigby Dames, B.A.; Graff, E.C.; Mohamedelhassan, R.; Vassilopoulos, T.; Charvet, C.J. Going Beyond Established Model Systems of Alzheimer’s Disease: Companion Animals Provide Novel Insights into the Neurobiology of Aging. Commun. Biol. 2023, 6, 655. [Google Scholar] [CrossRef] [PubMed]
- Sherwood, C.C.; Gómez-Robles, A. Brain Plasticity and Human Evolution. Annu. Rev. Anthropol. 2017, 46, 399–419. [Google Scholar] [CrossRef]
- Drennan, A.; Sherwood, C.C.; Gomez-Robles, A. The Evolution of Extended Neurodevelopment and Increased Neuroplasticity in Human Brains. In Reference Module in Neuroscience and Biobehavioral Psychology; Elsevier: Amsterdam, The Netherlands, 2025; Online ahead of print. [Google Scholar]
- Li, Y.-N.; Hu, D.-D.; Cai, X.-L.; Wang, Y.; Yang, C.; Jiang, J.; Zhang, Q.-L.; Tu, T.; Wang, X.-S.; Wang, H.; et al. Doublecortin Expressing Neurons in Human Cerebral Cortex Layer II and Amygdala from Infancy to 100 year-old. Mol. Neurobiol. 2023, 60, 3464–3485. [Google Scholar] [CrossRef]
- Coviello, S.; Gramuntell, Y.; Klimczak, P.; Varea, E.; Blasco-Ibañez, J.M.; Crespo, C.; Gutierrez, A.; Nacher, J. Phenotype and Distribution of Immature Neurons in the Human Cerebral Cortex Layer II. Front. Neuroanat. 2022, 16, 851432. [Google Scholar] [CrossRef]
- Kraatz, B.; Belabbas, R.; Fostowicz-Frelik, Ł.; Ge, D.-Y.; Kuznetsov, A.N.; Lang, M.M.; López-Torres, S.; Mohammadi, Z.; Racicot, R.A.; Ravosa, M.J.; et al. Lagomorpha As a Model Morphological System. Front. Ecol. Evol. 2021, 9, 636402. [Google Scholar] [CrossRef]
- Preuss, T.M.; Wise, S.P. Evolution of Prefrontal Cortex. Neuropsychopharmacology 2022, 47, 3–19. [Google Scholar] [CrossRef]
- Heuer, K.; Traut, N.; Aristide, L.; Alavi, S.F.; Herbin, M.; Mars, R.B.; Mylapalli, R.; Najafipashaki, S.; Sakai, T.; Santin, M.; et al. Principles of Neocortical Organisation and Behaviour in Primates. bioRxiv 2025. [Google Scholar] [CrossRef]
- Moreno-Jiménez, E.P.; Terreros-Roncal, J.; Flor-García, M.; Rábano, A.; Llorens-Martín, M. Evidences for Adult Hippocampal Neurogenesis in Humans. J. Neurosci. 2021, 41, 2541–2553. [Google Scholar] [CrossRef] [PubMed]
- Mégevand, P.; Groppe, D.M.; Bickel, S.; Mercier, M.R.; Goldfinger, M.S.; Keller, C.J.; Entz, L.; Mehta, A.D. The Hippocampus and Amygdala Are Integrators of Neocortical Influence: A CorticoCortical Evoked Potential Study. Brain Connect. 2017, 7, 648–660. [Google Scholar] [CrossRef] [PubMed]
- Ben Abdallah, N.M.; Slomianka, L.; Vyssotski, A.L.; Lipp, H.P. Early Age-related Changes in Adult Hippocampal Neurogenesis in C57 Mice. Neurobiol. Aging 2010, 31, 151–161. [Google Scholar] [CrossRef]
- Encinas, J.M.; Michurina, T.V.; Peunova, N.; Park, J.-H.; Tordo, J.; Peterson, D.A.; Fishell, G.; Koulakov, A.; Enikolopov, G. Division-coupled Astrocytic Differentiation and Age-related Depletion of Neural Stem Cells in the Adult Hippocampus. Cell Stem Cell 2011, 8, 566–579. [Google Scholar] [CrossRef] [PubMed]
- Kohler, S.J.; Williams, N.I.; Stanton, G.B.; Cameron, J.L.; Greenough, W.T. Maturation Time of New Granule Cells in the Dentate Gyrus of Adult Macaque Monkeys Exceeds Six Months. Proc. Natl. Acad. Sci. USA 2011, 108, 10326–10331. [Google Scholar] [CrossRef]
- Gao, T.; Fujita, Y.; Chen, Y.; Wang, Z.; Lu, Y.; Huang, D.; Shen, J.; Yan, L.; Zhang, Y.; Wang, Y.; et al. From Seq-ing to Modeling: Towards a Molecular Understanding of Special Properties of Immature Neurons in The Human Hippocampus. Life Med. 2025, 4, lnaf031. [Google Scholar] [CrossRef] [PubMed]
- La Rosa, C.; Ghibaudi, M.; Bonfanti, L. Newly Generated and Non-newly Generated “Immature” Neurons in the Mammalian Brain: A Possible Reservoir of Young Cells to Prevent Brain Ageing and Disease? J. Clin. Med. 2019, 8, 685. [Google Scholar] [CrossRef] [PubMed]




Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
Share and Cite
Pattaro, A.; Ghibaudi, M.; Zanone, A.; Cerrato, V.; Sherwood, C.C.; Bonfanti, L. Mixed Signals and Interspecies Variation in the Plasticity of Adult Mammal Brains. Cells 2026, 15, 520. https://doi.org/10.3390/cells15060520
Pattaro A, Ghibaudi M, Zanone A, Cerrato V, Sherwood CC, Bonfanti L. Mixed Signals and Interspecies Variation in the Plasticity of Adult Mammal Brains. Cells. 2026; 15(6):520. https://doi.org/10.3390/cells15060520
Chicago/Turabian StylePattaro, Alessia, Marco Ghibaudi, Alessandro Zanone, Valentina Cerrato, Chet C. Sherwood, and Luca Bonfanti. 2026. "Mixed Signals and Interspecies Variation in the Plasticity of Adult Mammal Brains" Cells 15, no. 6: 520. https://doi.org/10.3390/cells15060520
APA StylePattaro, A., Ghibaudi, M., Zanone, A., Cerrato, V., Sherwood, C. C., & Bonfanti, L. (2026). Mixed Signals and Interspecies Variation in the Plasticity of Adult Mammal Brains. Cells, 15(6), 520. https://doi.org/10.3390/cells15060520

