Restriction-induced time-dependent transcytolemmal water exchange: Revisiting the Kärger exchange model

Fuente: arXiv
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Autori principali: Shi, Diwei, Liu, Fan, Li, Sisi, Chen, Li, Jiang, Xiaoyu, Gore, John C., Zheng, Quanshui, Guo, Hua, Xu, Junzhong
Natura: Preprint
Pubblicazione: 2024
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author Shi, Diwei
Liu, Fan
Li, Sisi
Chen, Li
Jiang, Xiaoyu
Gore, John C.
Zheng, Quanshui
Guo, Hua
Xu, Junzhong
author_facet Shi, Diwei
Liu, Fan
Li, Sisi
Chen, Li
Jiang, Xiaoyu
Gore, John C.
Zheng, Quanshui
Guo, Hua
Xu, Junzhong
contents The Kärger model and its derivatives have been widely used to incorporate transcytolemmal water exchange rate, an essential characteristic of living cells, into analyses of diffusion MRI (dMRI) signals from tissues. The Kärger model consists of two homogeneous exchanging components coupled by an exchange rate constant and assumes measurements are made with sufficiently long diffusion time and slow water exchange. Despite successful applications, it remains unclear whether these assumptions are generally valid for practical dMRI sequences and biological tissues. In particular, barrier-induced restrictions to diffusion produce inhomogeneous magnetization distributions in relatively large-sized compartments such as cancer cells, violating the above assumptions. The effects of this inhomogeneity are usually overlooked. We performed computer simulations to quantify how restriction effects, which in images produce edge enhancements at compartment boundaries, influence different variants of the Kärger-model. The results show that the edge enhancement effect will produce larger, time-dependent estimates of exchange rates in e.g., tumors with relatively large cell sizes (>10 μm), resulting in overestimations of water exchange as previously reported. Moreover, stronger diffusion gradients, longer diffusion gradient durations, and larger cell sizes, all cause more pronounced edge enhancement effects. This helps us to better understand the feasibility of the Kärger model in estimating water exchange in different tissue types and provides useful guidance on signal acquisition methods that may mitigate the edge enhancement effect. This work also indicates the need to correct the overestimated transcytolemmal water exchange rates obtained assuming the Kärger-model.
format Preprint
id arxiv_https___arxiv_org_abs_2404_00556
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Restriction-induced time-dependent transcytolemmal water exchange: Revisiting the Kärger exchange model
Shi, Diwei
Liu, Fan
Li, Sisi
Chen, Li
Jiang, Xiaoyu
Gore, John C.
Zheng, Quanshui
Guo, Hua
Xu, Junzhong
Medical Physics
Biological Physics
The Kärger model and its derivatives have been widely used to incorporate transcytolemmal water exchange rate, an essential characteristic of living cells, into analyses of diffusion MRI (dMRI) signals from tissues. The Kärger model consists of two homogeneous exchanging components coupled by an exchange rate constant and assumes measurements are made with sufficiently long diffusion time and slow water exchange. Despite successful applications, it remains unclear whether these assumptions are generally valid for practical dMRI sequences and biological tissues. In particular, barrier-induced restrictions to diffusion produce inhomogeneous magnetization distributions in relatively large-sized compartments such as cancer cells, violating the above assumptions. The effects of this inhomogeneity are usually overlooked. We performed computer simulations to quantify how restriction effects, which in images produce edge enhancements at compartment boundaries, influence different variants of the Kärger-model. The results show that the edge enhancement effect will produce larger, time-dependent estimates of exchange rates in e.g., tumors with relatively large cell sizes (>10 μm), resulting in overestimations of water exchange as previously reported. Moreover, stronger diffusion gradients, longer diffusion gradient durations, and larger cell sizes, all cause more pronounced edge enhancement effects. This helps us to better understand the feasibility of the Kärger model in estimating water exchange in different tissue types and provides useful guidance on signal acquisition methods that may mitigate the edge enhancement effect. This work also indicates the need to correct the overestimated transcytolemmal water exchange rates obtained assuming the Kärger-model.
title Restriction-induced time-dependent transcytolemmal water exchange: Revisiting the Kärger exchange model
topic Medical Physics
Biological Physics
url https://arxiv.org/abs/2404.00556