journal
https://read.qxmd.com/read/38468052/fractal-based-morphometrics-of-glioblastoma
#21
JOURNAL ARTICLE
Lee Curtin
Morphometrics have been able to distinguish important features of glioblastoma from magnetic resonance imaging (MRI). Using morphometrics computed on segmentations of various imaging abnormalities, we show that the average and range of lacunarity and fractal dimension values across MRI slices can be prognostic for survival. We look at the repeatability of these metrics to multiple segmentations and how they are impacted by image resolution. We speak to the challenges to overcome before these metrics are included in clinical care, and the insight that they may provide...
2024: Advances in Neurobiology
https://read.qxmd.com/read/38468051/computational-fractal-based-analysis-of-brain-tumor-microvascular-networks
#22
JOURNAL ARTICLE
Antonio Di Ieva, Omar S Al-Kadi
Brain parenchyma microvasculature is set in disarray in the presence of tumors, and malignant brain tumors are among the most vascularized neoplasms in humans. As microvessels can be easily identified in histologic specimens, quantification of microvascularity can be used alone or in combination with other histological features to increase the understanding of the dynamic behavior, diagnosis, and prognosis of brain tumors. Different brain tumors, and even subtypes of the same tumor, show specific microvascular patterns, as a kind of "microvascular fingerprint," which is particular to each histotype...
2024: Advances in Neurobiology
https://read.qxmd.com/read/38468050/fractal-based-analysis-of-histological-features-of-brain-tumors
#23
JOURNAL ARTICLE
Omar S Al-Kadi, Antonio Di Ieva
The structural complexity of brain tumor tissue represents a major challenge for effective histopathological diagnosis. Tumor vasculature is known to be heterogeneous, and mixtures of patterns are usually present. Therefore, extracting key descriptive features for accurate quantification is not a straightforward task. Several steps are involved in the texture analysis process where tissue heterogeneity contributes to the variability of the results. One of the interesting aspects of the brain lies in its fractal nature...
2024: Advances in Neurobiology
https://read.qxmd.com/read/38468049/multifractal-analysis-of-brain-tumor-interface-in-glioblastoma
#24
JOURNAL ARTICLE
Jacksson Sánchez, Miguel Martín-Landrove
The dynamics of tumor growth is a very complex process, generally accompanied by numerous chromosomal aberrations that determine its genetic and dynamical heterogeneity. Consequently, the tumor interface exhibits a non-regular and heterogeneous behavior often described by a single fractal dimension. A more suitable approach is to consider the tumor interface as a multifractal object that can be described by a set of generalized fractal dimensions. In the present work, detrended fluctuation and multifractal analysis are used to characterize the complexity of glioblastoma...
2024: Advances in Neurobiology
https://read.qxmd.com/read/38468048/texture-estimation-for-abnormal-tissue-segmentation-in-brain-mri
#25
JOURNAL ARTICLE
Syed M S Reza, Atiq Islam, Khan M Iftekharuddin
This chapter discusses multifractal texture estimation and characterization of brain lesions (necrosis, edema, enhanced tumor, nonenhanced tumor, etc.) in magnetic resonance (MR) images. This work formulates the complex texture of tumor in MR images using a stochastic model known as multifractional Brownian motion (mBm). Mathematical derivations of the mBm model and corresponding algorithm to extract the spatially varying multifractal texture feature are discussed. Extracted multifractal texture feature is fused with other effective features to enhance the tissue characteristics...
2024: Advances in Neurobiology
https://read.qxmd.com/read/38468047/computational-fractal-based-analysis-of-mr-susceptibility-weighted-imaging-swi-in-neuro-oncology-and-neurotraumatology
#26
JOURNAL ARTICLE
Antonio Di Ieva
Susceptibility-weighted imaging (SWI) is a magnetic resonance imaging (MRI) technique able to depict the magnetic susceptibility produced by different substances, such as deoxyhemoglobin, calcium, and iron. The main application of SWI in clinical neuroimaging is detecting microbleedings and venous vasculature. Quantitative analyses of SWI have been developed over the last few years, aimed to offer new parameters, which could be used as neuroimaging biomarkers. Each technique has shown pros and cons, but no gold standard exists yet...
2024: Advances in Neurobiology
https://read.qxmd.com/read/38468046/fractals-in-neuroimaging
#27
JOURNAL ARTICLE
Salim Lahmiri, Mounir Boukadoum, Antonio Di Ieva
Several natural phenomena can be described by studying their statistical scaling patterns, hence leading to simple geometrical interpretation. In this regard, fractal geometry is a powerful tool to describe the irregular or fragmented shape of natural features, using spatial or time-domain statistical scaling laws (power-law behavior) to characterize real-world physical systems. This chapter presents some works on the usefulness of fractal features, mainly the fractal dimension and the related Hurst exponent, in the characterization and identification of pathologies and radiological features in neuroimaging, mainly, magnetic resonance imaging...
2024: Advances in Neurobiology
https://read.qxmd.com/read/38468045/fractal-based-analysis-of-arteriovenous-malformations-avms
#28
JOURNAL ARTICLE
Antonio Di Ieva, Gernot Reishofer
Arteriovenous malformations (AVMs) are cerebrovascular lesions consisting of a pathologic tangle of the vessels characterized by a core termed the nidus, which is the "nest" where the fistulous connections occur. AVMs can cause headache, stroke, and/or seizures. Their treatment can be challenging requiring surgery, endovascular embolization, and/or radiosurgery as well. AVMs' morphology varies greatly among patients, and there is still a lack of standardization of angioarchitectural parameters, which can be used as morphometric parameters as well as potential clinical biomarkers (e...
2024: Advances in Neurobiology
https://read.qxmd.com/read/38468044/fractals-and-chaos-in-the-hemodynamics-of-intracranial-aneurysms
#29
JOURNAL ARTICLE
Gábor Závodszky, Dániel Gyürki, György Károlyi, István Szikora, György Paál
Computing the emerging flow in blood vessel sections by means of computational fluid dynamics is an often applied practice in hemodynamics research. One particular area for such investigations is related to the cerebral aneurysms, since their formation, pathogenesis, and the risk of a potential rupture may be flow-related. We present a study on the behavior of small advected particles in cerebral vessel sections in the presence of aneurysmal malformations. These malformations cause strong flow disturbances driving the system toward chaotic behavior...
2024: Advances in Neurobiology
https://read.qxmd.com/read/38468043/fractal-analysis-of-the-cerebrovascular-system-pathophysiology
#30
JOURNAL ARTICLE
Martin Soehle
The cerebrovascular system is characterized by parameters such as arterial blood pressure (ABP), cerebral perfusion pressure (CPP), and cerebral blood flow velocity (CBFV). These are regulated by interconnected feedback loops resulting in a fluctuating and complex time course. They exhibit fractal characteristics such as (statistical) self-similarity and scale invariance which could be quantified by fractal measures. These include the coefficient of variation, the Hurst coefficient H, or the spectral exponent α in the time domain, as well as the spectral index ß in the frequency domain...
2024: Advances in Neurobiology
https://read.qxmd.com/read/38468042/fractal-analysis-in-neurodegenerative-diseases
#31
JOURNAL ARTICLE
Daniel Pirici, Laurentiu Mogoanta, Daniela Adriana Ion, Samir Kumar-Singh
Neurodegenerative diseases are defined by progressive nervous system dysfunction and death of neurons. The abnormal conformation and assembly of proteins is suggested to be the most probable cause for many of these neurodegenerative disorders, leading to the accumulation of abnormally aggregated proteins, for example, amyloid β (Aβ) (Alzheimer's disease and vascular dementia), tau protein (Alzheimer's disease and frontotemporal lobar degeneration), α-synuclein (Parkinson's disease and Lewy body dementia), polyglutamine expansion diseases (Huntington disease), or prion proteins (Creutzfeldt-Jakob disease)...
2024: Advances in Neurobiology
https://read.qxmd.com/read/38468041/fractal-dimension-studies-of-the-brain-shape-in-aging-and-neurodegenerative-diseases
#32
JOURNAL ARTICLE
Jennilee M Davidson, Luduan Zhang, Guang H Yue, Antonio Di Ieva
The fractal dimension is a morphometric measure that has been used to investigate the changes of brain shape complexity in aging and neurodegenerative diseases. This chapter reviews fractal dimension studies in aging and neurodegenerative disorders in the literature. Research has shown that the fractal dimension of the left cerebral hemisphere increases until adolescence and then decreases with aging, while the fractal dimension of the right hemisphere continues to increase until adulthood. Studies in neurodegenerative diseases demonstrated a decline in the fractal dimension of the gray matter and white matter in Alzheimer's disease, amyotrophic lateral sclerosis, and spinocerebellar ataxia...
2024: Advances in Neurobiology
https://read.qxmd.com/read/38468040/fractal-dimension-analysis-in-neurological-disorders-an-overview
#33
JOURNAL ARTICLE
Leticia Díaz Beltrán, Christopher R Madan, Carsten Finke, Stephan Krohn, Antonio Di Ieva, Francisco J Esteban
Fractal analysis has emerged as a powerful tool for characterizing irregular and complex patterns found in the nervous system. This characterization is typically applied by estimating the fractal dimension (FD), a scalar index that describes the topological complexity of the irregular components of the nervous system, both at the macroscopic and microscopic levels, that may be viewed as geometric fractals. Moreover, temporal properties of neurophysiological signals can also be interpreted as dynamic fractals...
2024: Advances in Neurobiology
https://read.qxmd.com/read/38468039/clinical-sensitivity-of-fractal-neurodynamics
#34
JOURNAL ARTICLE
Elzbieta Olejarczyk, Milena Cukic, Camillo Porcaro, Filippo Zappasodi, Franca Tecchio
Among the significant advances in the understanding of the organization of the neuronal networks that coordinate the body and brain, their complex nature is increasingly important, resulting from the interaction between the very large number of constituents strongly organized hierarchically and at the same time with "self-emerging." This awareness drives us to identify the measures that best quantify the "complexity" that accompanies the continuous evolutionary dynamics of the brain. In this chapter, after an introductory section (Sect...
2024: Advances in Neurobiology
https://read.qxmd.com/read/38468038/fractals-pattern-recognition-memetics-and-ai-a-personal-journal-in-the-computational-neurosurgery
#35
JOURNAL ARTICLE
Antonio Di Ieva
In this chapter, the personal journey of the author in many countries, including Italy, Germany, Austria, the United Kingdom, Switzerland, the United States, Canada, and Australia, is summarized, aimed to merge different translational fields (such as neurosurgery and the clinical neurosciences in general, biomedical engineering, mathematics, computer science, and cognitive sciences) and lay the foundations of a new field defined computational neurosurgery, with fractals, pattern recognition, memetics, and artificial intelligence as the common key words of the journey...
2024: Advances in Neurobiology
https://read.qxmd.com/read/38468037/fractal-analysis-in-clinical-neurosciences-an-overview
#36
JOURNAL ARTICLE
Antonio Di Ieva
Over the last years, fractals have entered into the realms of clinical neurosciences. The whole brain and its components (i.e., neurons and astrocytes) have been studied as fractal objects, and even more relevant, the fractal-based quantification of the geometrical complexity of histopathological and neuroradiological images as well as neurophysiopathological time series has suggested the existence of a gradient in the pattern representation of neurological diseases. Computational fractal-based parameters have been suggested as potential diagnostic and prognostic biomarkers in different brain diseases, including brain tumors, neurodegeneration, epilepsy, demyelinating diseases, cerebrovascular malformations, and psychiatric disorders as well...
2024: Advances in Neurobiology
https://read.qxmd.com/read/38468036/the-fractal-geometry-of-the-human-brain-an-evolutionary-perspective
#37
JOURNAL ARTICLE
Michel A Hofman
The evolution of the brain in mammals is characterized by changes in size, architecture, and internal organization. Consequently, the geometry of the brain, and especially the size and shape of the cerebral cortex, has changed notably during evolution. Comparative studies of the cerebral cortex suggest that there are general architectural principles governing its growth and evolutionary development. In this chapter, some of the design principles and operational modes that underlie the fractal geometry and information processing capacity of the cerebral cortex in primates, including humans, will be explored...
2024: Advances in Neurobiology
https://read.qxmd.com/read/38468035/fractality-of-cranial-sutures
#38
JOURNAL ARTICLE
Takashi Miura
It has long been known that skull suture has a typical fractal structure. Although the fractal dimension has been utilized to assess morphology, the mechanism of the fractal structure formation remains to be elucidated. Recent advances in the mathematical modeling of biological pattern formation provided useful frameworks for understanding this mechanism. This chapter describes how various proposed mechanisms tried to explain the formation of fractal structures in cranial sutures.
2024: Advances in Neurobiology
https://read.qxmd.com/read/38468034/a-self-similarity-logic-may-shape-the-organization-of-the-nervous-system
#39
JOURNAL ARTICLE
Diego Guidolin, Cinzia Tortorella, Raffaele De Caro, Luigi F Agnati
From the morphological point of view, the nervous system exhibits a fractal, self-similar geometry at various levels of observations, from single cells up to cell networks. From the functional point of view, it is characterized by a hierarchical organization in which self-similar structures (networks) of different miniaturizations are nested within each other. In particular, neuronal networks, interconnected to form neuronal systems, are formed by neurons, which operate thanks to their molecular networks, mainly having proteins as components that via protein-protein interactions can be assembled in multimeric complexes working as micro-devices...
2024: Advances in Neurobiology
https://read.qxmd.com/read/38468033/neuronal-fractal-dynamics
#40
JOURNAL ARTICLE
Małgorzata Kołodziej, Przemysław Waliszewski
Synapse formation is a unique biological phenomenon. The molecular biological perspective of this phenomenon is different from the fractal geometrical one. However, these perspectives are not mutually exclusive and supplement each other. The cornerstone of the first one is a chain of biochemical reactions with the Markov property, that is, a deterministic, conditional, memoryless process ordered in time and in space, in which the consecutive stages are determined by the expression of some regulatory proteins...
2024: Advances in Neurobiology
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