RP's Ortho Notes

Examination of a patient with cerebral palsy

Components of evaluation

History

Functional Assessment

Functional assessment at current levels may be done by several tools such as the following.

  1. GMFCS – Gross motor function classification system (Palisano 1997)

Level I – Can walk indoors and outdoors and climb stairs without using hands or other forms of support. Can perform usual activities such as running and jumping with decreased speed, balance, and coordination.

Level II – Can climb stairs with the support of railing, but has difficulty with uneven surfaces, inclines, or in crowded places. Ability to run or jump limited.

Level III – Can walk on level grounds indoor and outdoor with the support of assistive devices. Can climb stairs using a railing. Can propel a manual wheelchair, but needs assistance for long distances or uneven surfaces.

Level IV – Walking ability severely limited even with assistive devices. Can propel powered wheelchair. Can do standing transfers, with or without assistance.

Level V – Severe restriction of voluntary control of movements. Poor head, neck, and trunk control. All areas of motor function impaired. Cannot sit or stand independently even with adaptive equipment.

2. FAQ- Functional assessment questionnaire

3. POSCI- POSNA outcomes data collection instruments

4. FMS- Functional mobility scale

Physical Examination

The following are the major components of physical examination.

1. Strength of muscles & Selective motor control of isolated muscle groups.

2. Degree and type of muscle tone.

3. Degree of static muscle and joint contracture.

4. Torsional and other bone deformities.

5. Fixed and mobile foot deformities.

6. Balance, equilibrium responses, and standing posture.

7. Gait by observation.

I. Muscle strength testing & Selective motor control of major muscles

Selective motor control grading

2. Isolated muscle contraction without movement in other joints, opposite limb or trunk.

1. Muscle contraction with nonobligatory movement in other joints of the limb, opposite limb or trunk.

0. Muscle contraction with obligatory movement in other joints, opposite limb or trunk.

Selective motor control testing

II. Assessment of tone

Modified Ashworth scale

0 – No increase in muscle tone

1 – Slight increase in muscle tone, manifested by a catch and release or by minimal resistance at the end of the ROM

1+ – Slight increase in muscle tone, manifested by a catch, followed by minimal resistance throughout the remainder (less than half) of the ROM

2 – More marked increase in muscle tone through most of the ROM, but affected part(s) can be easily moved

3 – Considerable increase in muscle tone, passive movement difficult

4 – Affected part(s) are rigid in flexion or extension

Tardieu scale

R1- Angle that is short of full ROM when first catch is detected at V2 or V3 speed of stretch.

R2- Maximum ROM achieved at V1 speed of stretch.

Difference between R1 and R2 indicate the deformity produced due to dynamic component of muscle spasm.

Small R1-R2 difference indicate more of static contracture and large R1-R2 difference indicate that deformity is mainly due to dynamic component of spasticity.

111. Examination of joints

Range of movement

Flexion assessed with the patient supine. Flex both hips and knees till the lumbar lordosis is obliterated and the anterior superior iliac spine and posterior superior iliac spines are at the same level. Now extend one hip and knee at a time while keeping the other hip and knee fully flexed. If a fixed flexion deformity is present, identify and measure. Flex the hip further to measure the range of flexion. (Modified Thomas test)

Extension assessed with knee in extension and in 900 knee flexion. Patient is prone. Stabilise the pelvis with one hand. Support the thigh just above the knee with the other hand and extend the hip with knee in extension. Measure the degree of extension possible. Now, hold the leg just above the ankle and extend the hip with the knee flexed to 90 degree. Note the degree of extension possible. If there is a rectus femoris contracture, the hip will go into flexion when the knee is flexed. (Duncan Ely test)

Abduction in flexion and in extension – Patient supine. Flex the hip to 90 degrees and flex the knee as well. Keep the feet together and assess the abduction in hip flexion. To assess hip abduction in knee extension, patient is examined in supine position. Square the pelvis if the anterior superior iliac spines are not level. Stabilize the pelvis by keeping fingers of one hand over the anterior superior iliac spine in a small patient or by placing the forearm across the ASIS in a large patient. Assess the range of abduction and adduction.

Abduction with knee flexion and knee extension (Phelps test for gracilis contracture) – Done if there is an adduction deformity of hip or if the abduction is severely limited. Done either in the prone position or in the supine position by bringing the patient down to the end of the examination couch till the knee is at the end of the examination couch. Assess the range of hip abduction first with the knee extended and then with the knee in 90 degrees of flexion. If the range of abduction improves with knee flexion in comparison to knee extension, gracilis muscle spasticity is the cause of limitation of hip abduction or adduction deformity.

Adduction

Internal rotation

External rotation

Power

Selectivity of motor control

Spasticity of hip flexors and adductors

Thomas test

Ober test

Craig test for anteversion

Examination of Knee

Knee flexion deformity may be due to capsular contracture, hamstring contracture or hamstring spasm.

Knee flexion deformity with the hip in extension and ankle in plantar flexion is due to capsular contracture.

Hamstring contracture is present if there is a FFD with the hip flexed to 90 degrees. (Popliteal angle)

Popliteal angle measured as the degrees lacking from full extension of knee with hip in 90 degree flexion.

Normal popliteal angle is 0-49 degrees in the 5-18 age group.

Bilateral popliteal angle measured with the contralateral hip flexed till the ASIS and PSIS are in the same line.

Hamstring shift – Significantly smaller popliteal angle when the pelvic tilt is corrected by flexing the contralateral hip. It is due to proximal migration of hamstring origin due to anterior tilting of pelvis produced by FFD of hip of opposite hip.

Hamstring shift of more than 20 degrees indicate excessive lumbar lordosis due to hip FFD, weak anterior abdominal muscles or weak hip extensors.

With every 10 FFD of hip there is 20 increase in knee flexion.

Hamstring lengthening weakens hip extension.

Clinical assessment of hamstring contracture should be confirmed by gait analysis befor doing hamstring lengthening.

Extension in prone and in supine position

Muscle testing of quadriceps and hamstrings

Selectivity of motor control

Spasticity of hamstrings

Duncan Ely’s test

Popliteal angle

Unilateral

Bilateral

Hamstring shift

Extensor lag

Patient supine. Knee flexed at the end of the table. Ask the patient to actively extend the knee.

Patella alta

Patient supine with knee extended. Compare the level of proximal pole of patella and the adductor tubercle. Normally the superior pole of patella is one finger breadth above the adductor tubercle.

Tibiofemoral angle

Range of movement

Plantarflexion

Dorsiflexion with knee in extension and in 90 degree flexion

Muscle testing of Tendoachilles, tibialis anterior, tibialis posterior, EHL, EDL, FHL, FDL, Peroneus longus, Peroneus brevis

Selectivity of motor control

Spasticity

Silfverskiold test

Supine

Knee flexed to 90 degrees.

Dorsiflex and invert the ankle. Note the degree of dorsiflexion.

Extend the knee. If ankle goes into plantarflexion, there is contracture of gastrocnemius.

Confusion test

Pronation and supination are pure rotational motion that occur through an oblique axis which produce movement in all three planes.

Foot must function as a mobile adaptor and as a rigid lever during different phases of gait.

In CP, patient may have structural abnormalities or nonstructural compensations for deformities in proximal or distal joints.

The structural abnormalities and resultant compensations are identified by first identifying the subtalar joint neutral position (STJN) and the range of supination and pronation from this position.

Compensations are nonstructural changes in alignment to compensate for structural abnormalities.

Subtalar joint neutral position (STJN) identified by palpating the talonavicular joint to identify the position of symmetrical reduction of talonavicular joint.

Keep the foot in the STJN position and assess the relationship between hindfoot and the distal third of the leg to identify the hindfoot deformity

If the bisectors of lower leg and hindfoot are linear the hind foot is in neutral position in relation to the lower leg. Hindfoot varus and valgus in relation to hindfoot can be seen.

Keep the foot in the STJN position and assess the relationship between forefoot and the hindfoot to identify the forefoot deformity.

Frontal plane – Relationship between level of metatarsal heads and the plane of the calcaneum to identify forefoot-hindfoot varus or valgus.

Two types of forefoot-hindfoot valgus deformity – With valgus of 1st metatarsal alone or valgus of all metatarsals- total forefoot valgus.

Sagittal plane- Relationship between plantar surface of the metatarsals and the plantar surface of calcaneus to look for forefoot equinus(cavus)/planus.

Transverse plane – Relationship between midline and the axis of hindfoot to look for forefoot adduction/abduction

Structural forefoot varus is compensated by hyperpronation of hindfoot. Hyperpronation leads to eversion of calcaneus, forefoot abduction and lowering of first ray. This will be compensated by internal rotation of the whole limb. If hindfoot deformity is flexible, then placing a block underneath the medial forefoot will correct the hindfoot compensation.

Structural forefoot varus is compensated by hypersupination of hindfoot. Hypersupination leads to inversion of calcaneus, forefoot adduction and increased height of medial longitudinal arch. This will be compensated by external rotation of the whole limb. If hindfoot deformity is flexible, then placing a block of 0.5cm to 2.5 cm underneath the lateral forefoot will correct the hindfoot compensation (Coleman block test). If hindfoot corrects, only the forefoot deformity needs to be addressed, if not, the forefoot and hindfoot needs to be addressed.

Forefoot equinus is compensated by ankle dorsiflexion. If ankle dorsiflexion is reduced, then compensation occurs through the midfoot.

Foot in weight bearing

Hindfoot position

Arch

Forefoot position 1

Forefoot position 2

Foot in non-weight bearing

Subtalar neutral

Hindfoot position

Hindfoot inversion and eversion

Arch

Midfoot motion

Forefoot position 1

Forefoot position 2

Bunion deformity

First MTPJ dorsiflexion

IV. Assessment of torsion and other deformities

Femoral anteversion

Craig’s test

Patient prone. Knee flexed to 90 degrees. Rotate the hip internally and externally till the greater trochanter is maximally prominent. The angle between tibia and the vertical gives the femoral anteversion.

Normal anteversion is 45 degrees at birth, remodels between 1year to 4 years and reach adult value at 8 years.

Normal anteversion is 10 degrees in males and 155 degree in females.

Tibial torsion

Thigh foot angle

Patient prone. Knee flexed to 90 degrees. Hindfoot vertical in the subtalar neutral position. Dorsiflex the ankle to neutral position. Place the goniometer arms in the axis of the thigh and along the heel bisector to a point between the 2nd and 3rd metatarsal heads to measure the thigh foot angle.

Bimalleolar axis

Patient supine. Knee extended. Rotate the limb till the medial and lateral femoral condyles are horizontal. Mark the tip of lateral and medial malleolus. Measure the angle between the bimalleolar axis and condylar axis.

2nd toe test

Patient prone. Knee extended. Rotate the limb till the second toe is vertical to the ground. Hold the limb in this degree of rotation and flex the knee to 90 degrees. Measure the angle between tibia and the vertical.

Heel bisector angle

Winter’s classification of gait in hemiplegic cerebral palsy

Type 1 hemiplegia gait – Drop foot type

Type 2 hemiplegia gait – True equinus with or without recurvatum knee

Type 3 hemiplegia gait – Stiff knee gait

Type 4 hemiplegia gait – Ankle in equinus, knee in flexion, hip in flexion adduction and internal rotation and the pelvis in anterior tilt.

Type 1 – True equinus

Type 2 – Jump gait

Type 3 – Apparent equinus

Type 4 – Crouch gait

knee flexed, indicates that  contracture of the gracilis is the cause.

References

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