Blood and cerebrospinal fluid flow oscillations measured with real-time phase-contrast MRI: breathing mode matters

被引:23
作者
Lagana, Maria Marcella [1 ]
Di Tella, Sonia [1 ,2 ]
Ferrari, Francesca [6 ]
Pelizzari, Laura [1 ]
Cazzoli, Marta [1 ]
Alperin, Noam [3 ]
Jin, Ning [4 ]
Zaca, Domenico [5 ]
Baselli, Giuseppe [6 ]
Baglio, Francesca [1 ]
机构
[1] IRCCS Fdn Don Carlo Gnocchi ONLUS, Milan, Italy
[2] Univ Cattolica Sacro Cuore, Dept Psychol, Milan, Italy
[3] Univ Miami, Miami, FL USA
[4] Siemens Med Solut USA Inc, MR R&D Collaborat, Cleveland, OH USA
[5] Siemens Healthcare, Milan, Italy
[6] Politecn Milan, Dept Elect Informat & Bioengn, Milan, Italy
关键词
MRI; Phase-contrast; Real-time; Blood flow; Cerebrospinal fluid flow; Respiration; MAGNETIC-RESONANCE; CEREBRAL-BLOOD; PERFUSION ABNORMALITIES; IN-VIVO; DYNAMICS; PRESSURE; CSF; VELOCITY; INSPIRATION; PHYSIOLOGY;
D O I
10.1186/s12987-022-00394-0
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Background: Cervical blood and cerebrospinal fluid (CSF) flow rates can be quantified with Phase-contrast (PC) MRI, which is routinely used for clinical studies. Previous MRI studies showed that venous and CSF flow alterations are linked to various pathological conditions. Since it is well known that, besides the heart beating, the thoracic pump influences the blood and CSF dynamics, we studied the effect of different respiration modes on blood and CSF flow rates using a real-time (RT)-PC prototype.Methods: Thirty healthy volunteers were examined with a 3 T scanner. A RT-PC sequence was acquired at the first cervical level to quantify the flow rates of internal carotid arteries, internal jugular veins (IJVs) and CSF. Each RT-PC acquisition was repeated three times, while the subjects were asked to breathe in three different ways for 60 s each: freely (F), with a constant rate (PN) and with deep and constant respiration rate (PD). The average flow rates were computed, they were removed from the respective signals and integrated in the inspiratory and expiratory phases (differential volumes). Finally, the power spectral density was computed for each detrended flow rate. High-and very -high frequency peaks were identified on the spectra while their frequencies were compared to the respiratory and cardiac frequencies estimated using a thoracic belt and a pulse oximeter. The area under the spectra was computed in four 0.5 Hz-wide ranges, centered on the high-frequency peak, on very-high frequency peak and its 2nd and 3rd harmonics, and then they were normalized by the flow rate variance. The effect of breathing patterns on average flow rates, on systolic and diastolic peaks, and on the normalized power was tested. Finally, the differential volumes of inspiration were compared to those of expiration.Results: The frequencies of the high-and very-high spectral peaks corresponded to the respiratory and cardiac frequencies. The average flow rate progressively decreased from F to PN to PD breathing, and the cardiac modulations were less predominant especially for the IJVs. The respiratory modulation increased with PD breathing. The average volumes displaced in the inspiratory phases were not significantly different from those of the expiratory one.Conclusions: The spectral analyses demonstrated higher respiratory modulations in PD compared to free breathing, even prevailing the cardiac modulation in the IJVs, showing an increment of the thoracic pump affecting the flow rate shape.
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页数:17
相关论文
共 52 条
[1]   Spinal CSF flow in response to forced thoracic and abdominal respiration [J].
Aktas, Goekmen ;
Kollmeier, Jost M. ;
Joseph, Arun A. ;
Merboldt, Klaus-Dietmar ;
Ludwig, Hans-Christoph ;
Gaertner, Jutta ;
Frahm, Jens ;
Dreha-Kulaczewski, Steffi .
FLUIDS AND BARRIERS OF THE CNS, 2019, 16 (1)
[2]   Quantifying the effect of posture on intracranial physiology in humans by MRI flow studies [J].
Alperin, N ;
Lee, SH ;
Sivaramakrishnan, A ;
Hushek, SG .
JOURNAL OF MAGNETIC RESONANCE IMAGING, 2005, 22 (05) :591-596
[3]   Hemodynamically independent analysis of cerebrospinal fluid and brain motion observed with dynamic phase contrast MRI [J].
Alperin, N ;
Vikingstad, EM ;
GomezAnson, B ;
Levin, DN .
MAGNETIC RESONANCE IN MEDICINE, 1996, 35 (05) :741-754
[4]   Cerebrospinal fluid dynamics and relation with blood flow -: A magnetic resonance study with semiautomated cerebrospinal fluid segmentation [J].
Balédent, O ;
Henry-Feugeas, MCC ;
Idy-Peretti, I .
INVESTIGATIVE RADIOLOGY, 2001, 36 (07) :368-377
[5]   Real-Time Phase-Contrast MRI to Monitor Cervical Blood and Cerebrospinal Fluid Flow Beat-by-Beat Variability [J].
Baselli, Giuseppe ;
Fasani, Federica ;
Pelizzari, Laura ;
Cazzoli, Marta ;
Baglio, Francesca ;
Lagana, Maria Marcella .
BIOSENSORS-BASEL, 2022, 12 (06)
[6]   Predicting the Aqueductal Cerebrospinal Fluid Pulse: A Statistical Approach [J].
Beggs, Clive B. ;
Shepherd, Simon J. ;
Cecconi, Pietro ;
Lagana, Maria Marcella .
APPLIED SCIENCES-BASEL, 2019, 9 (10)
[7]  
Borson Soo, 2008, Int J Chron Obstruct Pulmon Dis, V3, P429
[8]   Magnetic Resonance Imaging of Normal Pressure Hydrocephalus [J].
Bradley, William G., Jr. .
SEMINARS IN ULTRASOUND CT AND MRI, 2016, 37 (02) :120-128
[9]  
BROMBERGERBARNEA B, 1981, FED PROC, V40, P2172
[10]   Dynamics of respiratory and cardiac CSF motion revealed with real-time simultaneous multi-slice EPI velocity phase contrast imaging [J].
Chen, Liyong ;
Beckett, Alexander ;
Verma, Ajay ;
Feinberg, David A. .
NEUROIMAGE, 2015, 122 :281-287