Effect of Leg Extension Angle on Knee Flexion Angle during Swing Phase in Post-Stroke Gait

被引:14
作者
Matsuzawa, Yuta [1 ,2 ]
Miyazaki, Takasuke [3 ]
Takeshita, Yasufumi [1 ]
Higashi, Naoto
Hayashi, Hiroyuki [4 ]
Araki, Sota [3 ,4 ]
Nakatsuji, Shintaro [1 ,2 ]
Fukunaga, Seiji [5 ]
Kawada, Masayuki [3 ]
Kiyama, Ryoji [3 ]
机构
[1] Kagoshima Univ, Grad Sch Hlth Sci, Course Hlth Sci, Doctoral Dept, Kagoshima 8908544, Japan
[2] Miyakonojo Rehabil Acad, Miyazaki 8850062, Japan
[3] Kagoshima Univ, Sch Hlth Sci, Course Phys Therapy, Fac Med, Kagoshima K1740552, Japan
[4] Kagoshima Univ, Grad Sch Hlth Sci, Course Hlth Sci, Masters Dept, Kagoshima 8908544, Japan
[5] Fujimoto Gen Hosp, Miyazaki 8850055, Japan
来源
MEDICINA-LITHUANIA | 2021年 / 57卷 / 11期
关键词
leg extension angle; knee flexion angle; stroke; inertial measurement units; gait analysis; GROUND REACTION FORCES; ANKLE-FOOT ORTHOSIS; PARETIC PROPULSION; STIFF; INDIVIDUALS; STROKE; HIP; PERFORMANCE; VELOCITY; WEAKNESS;
D O I
10.3390/medicina57111222
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Background and Objectives: Leg extension angle is important for increasing the propulsion force during gait and is a meaningful indicator for evaluating gait quality in stroke patients. Although leg extension angle during late stance might potentially also affect lower limb kinematics during the swing phase, the relationship between these two remains unclear. This study aimed to investigate the relationship between leg extension angle and knee flexion angle during pre-swing and swing phase in post-stroke gait. Materials and Methods: Twenty-nine stroke patients walked along a 16 m walkway at a self-selected speed. Tilt angles and acceleration of pelvis and paretic lower limb segments were measured using inertial measurement units. Leg extension angle, consisting of a line connecting the hip joint with the ankle joint, hip and knee angles, and increments of velocity during pre-swing and swing phase were calculated. Correlation analysis was conducted to examine the relationships between these parameters. Partial correlation analysis adjusted by the Fugl-Meyer assessment-lower limb (FMA-LL) was also performed. Results: On the paretic side, leg extension angle was positively correlated with knee flexion angle during the swing phase (r = 0.721, p < 0.001) and knee flexion angle and increments of velocity during the pre-swing phase (r = 0.740-0.846, p < 0.001). Partial correlation analysis adjusted by the FMA-LL showed significant correlation between leg extension angle and knee flexion angle during the swing phase (r = 0.602, p = 0.001) and knee flexion angle and increments of velocity during the pre-swing phase (r = 0.655-0.886, p < 0.001). Conclusions: Leg extension angle affected kinematics during the swing phase in post-stroke gait regardless of the severity of paralysis, and was similar during the pre-swing phase. These results would guide the development of effective gait training programs that enable a safe and efficient gait for stroke patients.
引用
收藏
页数:8
相关论文
共 36 条
[1]   Contributors of stiff knee gait pattern for able bodies: Hip and knee velocity reduction and tiptoe gait [J].
Akalan, N. Ekin ;
Kuchimov, Shavkat ;
Apti, Adnan ;
Temelli, Yener ;
Nene, Anand .
GAIT & POSTURE, 2016, 43 :176-181
[2]   Rectus femoris hyperreflexia contributes to Stiff-Knee gait after stroke [J].
Akbas, Tunc ;
Kim, Kyoungsoon ;
Doyle, Kathleen ;
Manella, Kathleen ;
Lee, Robert ;
Spicer, Patrick ;
Knikou, Maria ;
Sulzer, James .
JOURNAL OF NEUROENGINEERING AND REHABILITATION, 2020, 17 (01)
[3]   Effects of ankle foot orthosis in stiff knee gait in adults with hemiplegia [J].
Andres Gatti, Marcelo ;
Freixes, Orestes ;
Anibal Fernandez, Sergio ;
Elisa Rivas, Maria ;
Crespo, Marcos ;
Waldman, Silvina V. ;
Emilio Olmos, Lisandro .
JOURNAL OF BIOMECHANICS, 2012, 45 (15) :2658-2661
[4]   Plantar flexor muscle weakness may cause stiff-knee gait [J].
Apti, Adnan ;
Akalan, N. Ekin ;
Kuchimov, Shavkat ;
Ozdincler, Arzu Razak ;
Temelli, Yener ;
Nene, Anand .
GAIT & POSTURE, 2016, 46 :201-207
[5]   Anterior-posterior ground reaction forces as a measure of paretic leg contribution in hemiparetic walking [J].
Bowden, MG ;
Balasubramanian, CK ;
Neptune, RR ;
Kautz, SA .
STROKE, 2006, 37 (03) :872-876
[6]   Biomechanical gait characteristics of naturally occurring unsuccessful foot clearance during swing in individuals with chronic stroke [J].
Burpee, Jessica L. ;
Lewek, Michael D. .
CLINICAL BIOMECHANICS, 2015, 30 (10) :1102-1107
[7]   Gait performance with compensatory adaptations in stroke patients with different degrees of motor recovery [J].
Chen, CL ;
Chen, HC ;
Tang, SFT ;
Wu, CY ;
Cheng, PT ;
Hong, WH .
AMERICAN JOURNAL OF PHYSICAL MEDICINE & REHABILITATION, 2003, 82 (12) :925-935
[8]   Joint moment work during the stance-to-swing transition in hemiparetic subjects [J].
Chen, George ;
Patten, Carolynn .
JOURNAL OF BIOMECHANICS, 2008, 41 (04) :877-883
[9]   Altered post-stroke propulsion is related to paretic swing phase kinematics [J].
Dean, Jesse C. ;
Bowden, Mark G. ;
Kelly, Abigail L. ;
Kautz, Steven A. .
CLINICAL BIOMECHANICS, 2020, 72 :24-30
[10]   Protocol for the locomotor experience applied post-stroke (LEAPS) trial: a randomized controlled trial [J].
Duncan, Pamela W. ;
Sullivan, Katherine J. ;
Behrman, Andrea L. ;
Azen, Stanley P. ;
Wu, Samuel S. ;
Nadeau, Stephen E. ;
Dobkin, Bruce H. ;
Rose, Dorian K. ;
Tilson, Julie K. .
BMC NEUROLOGY, 2007, 7 (1)