Structural Validation of the Intermediate Leptomeningeal Layer in the Human Central Nervous System
Traditionally, the human central nervous system (CNS) is described as having three meningeal layers, from outer to inner: dura mater, arachnoid mater, and pia mater. The arachnoid and pia mater are called the leptomeninges, and the space between them is filled with cerebrospinal fluid (CSF). Using gross dissection, light microscopy, and ultrastructural analysis of fresh postmortem and cadaveric CNS specimens spanning fetal to adult ages (N=61), we demonstrate a fibrocellular intermediate leptomeningeal layer (ILL) from the cortex to the caudal end of the spinal cord. The ILL divides the subarachnoid space (SAS) into two distinct structural compartments, through which vessels and nerves pass. The ILL shows unique structural features, such as dips into the brains sulci and fissures, as a double-fold membrane that bears intra-layer trabeculae, carries vessels, and forms the perivascular sheath. Moreover, throughout the CNS, it appears to be a non-sieved barrier, characterized by the presence of tight and adherens junctions. ILL, predominantly in the spinal cord, contains macrophage-like cells, indicating its layer-specific immune properties. The ILL warrants recognition as a distinct human meningeal layer with potential barrier and immune functions. SignificanceO_ST_ABSAn Intermediate Leptomeningeal Layer encloses the Central Nervous System in HumansC_ST_ABSThe integrated analysis of our macroscopic, microscopic, and ultrastructural study provides robust support for an intermediate leptomeningeal layer (ILL) in the subarachnoid space (SAS) of the human central nervous system (CNS) along the entire neural axis. The ILL is a fibrocellular macroscopic structure, with restricted permeability, that divides the cerebrospinal fluid (CSF)-filled SAS into two distinct structural compartments. Uniquely, ILL revealed the presence of cells with macrophage-like properties, suggesting a possible role in immune surveillance. The ILL may redefine the established concept of protective coverings of CNS, CSF circulation dynamics, and the role of leptomeninges in health and disease, including drug delivery.