The China Mail - Spinal cord implant helps paralysed patients walk again

USD -
AED 3.672497
AFN 65.476996
ALL 80.624983
AMD 364.974259
ANG 1.789783
AOA 917.999692
ARS 1491.741104
AUD 1.415168
AWG 1.80125
AZN 1.701624
BAM 1.695131
BBD 2.013772
BDT 122.727568
BGN 1.696366
BHD 0.377013
BIF 2989.30472
BMD 1
BND 1.279707
BOB 11.723256
BRL 5.1822
BSD 0.999822
BTN 95.377802
BWP 13.458947
BYN 3.007007
BYR 19600
BZD 2.01086
CAD 1.39104
CDF 2273.000038
CHF 0.813602
CLF 0.023234
CLP 914.439757
CNY 6.743203
CNH 6.74494
COP 3125.47
CRC 448.949346
CUC 1
CUP 26.5
CVE 95.568479
CZK 20.982202
DJF 178.045684
DKK 6.47703
DOP 58.519421
DZD 132.928959
EGP 50.180797
ERN 15
ETB 159.950519
EUR 0.86641
FJD 2.21345
FKP 0.740977
GBP 0.740675
GEL 2.610111
GGP 0.740977
GHS 11.128686
GIP 0.740977
GMD 73.507249
GNF 8783.265513
GTQ 7.627971
GYD 209.1829
HKD 7.84673
HNL 26.864959
HRK 6.528501
HTG 130.780532
HUF 314.866498
IDR 17819.3
ILS 2.95937
IMP 0.740977
INR 95.438198
IQD 1310.5
IRR 1374587.501968
ISK 123.1974
JEP 0.740977
JMD 158.180975
JOD 0.70897
JPY 159.192006
KES 129.209874
KGS 87.449726
KHR 4046.698677
KMF 427.000133
KPW 900.000294
KRW 1414.934982
KWD 0.30876
KYD 0.833243
KZT 465.286595
LAK 22558.404583
LBP 89534.106716
LKR 333.288554
LRD 181.477003
LSL 16.129242
LTL 2.95274
LVL 0.60489
LYD 6.368494
MAD 9.261251
MDL 17.356486
MGA 4305.000212
MKD 53.324955
MMK 2099.413896
MNT 3597.332522
MOP 8.081473
MRU 40.066389
MUR 47.110158
MVR 15.450097
MWK 1733.741837
MXN 17.029504
MYR 4.083098
MZN 63.909717
NAD 16.129242
NGN 1362.719669
NIO 36.792109
NOK 9.489865
NPR 152.601176
NZD 1.704145
OMR 0.384502
PAB 0.999848
PEN 3.373009
PGK 4.402496
PHP 61.3645
PKR 277.775001
PLN 3.73456
PYG 5967.212831
QAR 3.643501
RON 4.541897
RSD 101.634987
RUB 83.076123
RWF 1469
SAR 3.753929
SBD 8.048583
SCR 13.910203
SDG 600.497914
SEK 9.549399
SGD 1.27971
SHP 0.740866
SLE 24.498131
SLL 20969.499227
SOS 571.496016
SRD 37.7225
STD 20697.981008
STN 21.425
SVC 8.748445
SYP 13001.999906
SZL 16.133575
THB 33.175497
TJS 9.23879
TMT 3.51
TND 2.934994
TOP 2.40776
TRY 47.885201
TTD 6.780175
TWD 32.007396
TZS 2645.774976
UAH 44.693081
UGX 3712.16225
UYU 40.060498
UZS 11950.000135
VES 770.1091
VND 26100.5
VUV 118.611996
WST 2.733656
XAF 568.516344
XAG 0.015585
XAU 0.000231
XCD 2.70255
XCG 1.801951
XDR 0.707052
XOF 568.504905
XPF 103.824971
YER 237.197941
ZAR 16.195635
ZMK 9001.202229
ZMW 18.797263
ZWL 321.999592
  • RBGPF

    -0.8200

    71.34

    -1.15%

  • CMSC

    0.0250

    21.475

    +0.12%

  • BTI

    1.5100

    57.35

    +2.63%

  • GSK

    0.1500

    50.45

    +0.3%

  • RELX

    0.1200

    34.67

    +0.35%

  • RYCEF

    -0.3900

    20.71

    -1.88%

  • NGG

    0.5200

    81.2

    +0.64%

  • RIO

    -3.0200

    98.2

    -3.08%

  • CMSD

    0.0000

    21.59

    0%

  • BCE

    0.1900

    23.32

    +0.81%

  • AZN

    -1.2600

    157.24

    -0.8%

  • JRI

    -0.0300

    12.68

    -0.24%

  • BCC

    -0.1200

    84.13

    -0.14%

  • VOD

    0.1300

    16.22

    +0.8%

  • BP

    -0.1000

    42.83

    -0.23%

Spinal cord implant helps paralysed patients walk again
Spinal cord implant helps paralysed patients walk again

Spinal cord implant helps paralysed patients walk again

In 2017, Michel Roccati was in a motorbike accident that left his lower body completely paralysed. In 2020, he walked again, thanks to a breakthrough new spinal cord implant.

Text size:

The implant sends electrical pulses to his muscles, mimicking the action of the brain, and could one day help people with severe spinal injuries stand, walk and exercise.

It builds on long-running research using electrical pulses to improve the quality of life for people with spinal cord injuries, including a 2018 study by the same team that helped people with partial lower-body paralysis walk again.

"It was a very emotional experience," Roccati told journalists of the first time the electrical pulses were activated and he took a step.

He was one of three patients involved in the study, published Monday in the journal Nature Medicine, all of them unable to move their lower bodies after accidents.

The three were able to take steps shortly after the six-centimetre implant was inserted and its pulses were fine-tuned.

"These electrodes were longer and larger than the ones we had previously implanted, and we could access more muscles thanks to this new technology," said Jocelyne Bloch, a neurosurgeon at the Lausanne University Hospital who helped lead the trial.

Those initial steps, while breathtaking for the researchers and their patients, were difficult and required support bars and significant upper body strength.

But the patients could start rehabilitation immediately, and within four months Roccati could walk with only a frame for balance.

"It's not that it's a miracle right away, not by far," cautioned Gregoire Courtine, a neuroscientist at the Swiss Federal Institute of Technology who led the research with Bloch.

But with practice, Roccati can now stand for several hours and walk nearly a kilometre. The Italian described being able to look clients in the eye, have a drink at a standing table and take a shower standing up thanks to the implant.

He and others in the trial were also able to climb stairs, swim and canoe.

- 'I see the improvement' -

The improvements depend on the electrical stimulation, which is triggered via a computer carried by the patient that activates a pattern of pulses.

Two of the patients can now activate their muscles slightly without electrical pulses, but only minimally.

By comparison, some patients with partial lower body paralysis treated in an earlier study are able to move their previously immobile legs and stand without stimulation.

The three men in the new trial were all injured at least a year before the implant and Bloch hopes to trial the technology sooner after an accident.

"What we all think is that if you try earlier it will have more effect," she said.

There are challenges: in early recovery, a patient's capacity is still in flux, making it hard to set a baseline from which to measure progress, and ongoing medical treatment and pain could hamper rehabilitation.

So far, the implants are also only suitable for those with an injury above the lower thoracic spinal cord, the section running from the base of the neck to the abdomen, because six centimetres of healthy spinal cord is needed.

The idea of using electrical pulses to address paralysis stemmed from technology used to regulate pain, and the researchers said they see scope for further applications.

They have also shown it can regulate low blood pressure in spinal cord injury patients and plan to soon release a study on its use for severe Parkinson's disease.

The team cautioned that significant work remains before the implant is available for treatment outside clinical studies, but said they receive around five messages a day from patients seeking help.

They next plan to miniaturise the computer controlling the pulses so it can be implanted in patients and controlled with a smartphone.

They expect this to be possible this year, and have plans for large-scale trials involving 50-100 patients in the United States and then Europe.

Roccati said he activates the implant daily at home and continues to get stronger.

"I see the improvement every day," he said.

"I feel better when I use it."

D.Wang--ThChM